Oversupply, expanding tariffs, and tech shifts reshape U.S. solar outlook – pv magazine USA

Global manufacturing capacity across every segment of the solar value chain remains severely overbuilt relative to near-term demand, said the latest PV Supply Technology, and Policy Report from Intertek CEA.
While global installations are projected to reach 638 GW in 2026, polysilicon manufacturing capacity is set to hit approximately 2,034 GW, and module capacity is projected at 1,908 GW, leaving a supply of more than 1.2 TW above global installation demand. 
U.S. installations are forecast to remain flat annually through 2030 as domestic buyers navigate persistent policy risks and regulatory unknowns. The global slowdown in 2026 is driven primarily by China, where domestic deployment has dropped sharply following the phase-out of grid subsidies and a lack of immediate demand drivers. 
Year-to-date monthly installation data in China shows steep year-over-year drops, including a 56% decline in March, 79% in April, and 91% in May compared to 2025 levels. Meanwhile, Indian deployment is surging as developers rush projects online ahead of the Approved List of Models and Manufacturers (ALMM) List II domestic cell mandate effective June 1, 2026.
Trade risks
Importing components into the U.S. market has become significantly riskier following a wave of parallel trade actions initiated throughout the second quarter, said Intertek CEA. Preliminary determinations under the Solar 4 investigations set combined duty rates exceeding 100% on cells and modules originating from India, Indonesia, and Laos, with preliminary countervailing duties taking effect July 12, 2026. 
Furthermore, new Anti-Circumvention cases targeting exports from Ethiopia and South Korea introduce retroactive duty liability for active supply chains. U.S. procurement teams also face potential forced labor Section 301 tariffs ranging from 10.0% to 12.5% across 59 countries. 
Supply security risks are also emerging on the export side, with direct ramifications for U.S. equipment and component supply chains. On April 7, 2026, China’s State Council published the nation’s first comprehensive supply chain security regulation, signed by Premier Li Qiang.
The regulation establishes explicit authority for multi-ministerial countermeasures against foreign trade restrictions, including potential export limits on critical raw materials, manufacturing technologies, equipment, and completed products. While Beijing has not yet enacted formal PV export bans, potential equipment restrictions could slow non-China cell and ingot manufacturing expansion plans by forcing suppliers to rely on legacy equipment.
Multilateral trade friction is escalating as well, said the report. In May 2026, India blocked China’s request for a dispute settlement panel at the World Trade Organization regarding India’s basic customs duties and ALMM rules. If these trade disputes escalate, China could leverage its new supply chain security regulation to restrict PV equipment or raw material exports to India, further disrupting non-China supply chains intended for U.S. imports. 
Technology trends
At the module technology level, manufacturers are aggressively pursuing efficiency gains to differentiate products amid global market oversupply.
As TOPCon maintains its dominance, cell makers are moving from half-cut and triple-cut designs to quad-cut cells compatible with G12 (210 mm) wafers. Because internal electrical power loss is proportional to the square of the current, splitting a cell into four pieces reduces internal power loss to 1/16 of a full cell. However, smaller cell pieces increase micro-crack risks and require additional welding points, leading to higher manufacturing costs.
High-power perovskite tandem modules debuted at recent trade events, though commercial mass-production timelines remain unconfirmed, said the report.
The Interek CEA report noted a shift , the 2026 Shanghai SNEC Expo featured more battery storage displays than PV exhibits for the first time in the event’s history.
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Solar project moving forward in Martin County – – Fairmont Sentinel

FAIRMONT – After weighing local opposition, the Minnesota Public Utilities Commission has approved the Lake Charlotte Solar Project in Martin County, and it is moving forward.
The project consists of a 150-megawatt facility and a 600-megawatt-hour battery energy storage system, from Geronimo Power and Lake Charlotte Solar, LLC. The solar panel array will be 662 acres in Rutland Township, while the project area as a whole is 1,276 acres. This area stretches between Lake Charlotte and Highway 15 and curls around Northrop to the west.
Plans are for construction to begin in the third quarter of 2027 and for operations to begin in the fourth quarter of 2029.
The project also plans to generate $358,000 per year in tax revenue, $287,000 to Martin County, and $71,000 to Rutland Township, for 30 years.
Throughout public comment periods in August 2025 and March 2026, this project has generated multiple concerns. These comments were posted to the project’s official page. Jennifer Moeller, who lives near the suggested project, said in her comments that she is afraid it is too close to be good for people’s health and enjoyment of the homes they have worked their whole lives for.
“We have seen recent stories of Solar Farms damaged by wind, hail and tornadoes,” she said. “This has left huge messes in these communities and possible danger with water contamination. Why would we want this here in our County and neighborhoods?”
In another public comment, Morgan Johnson raised concerns regarding the project’s scale, such as land use, environmental impact and its proximity to Lake Charlotte.
“The potential risks to local ecosystems, water quality and surrounding wildlife are significant, especially given how close this development would be to a natural water resource,” she said. “Beyond environmental concerns, projects of this size can permanently alter the character of the surrounding area, affecting not only the landscape but also the people who live nearby and value this environment.”
In total, 39 comments were sent in across multiple open comment periods.
Lake Charlotte Solar wrote a response to these public comments. Regarding impacts to farmland, they said it was found that the acreage for the project only constitutes 997.8 acres of farmland, which is 0.22 percent of cropland in Martin County.
“As a result, the EA concluded that the Project is not expected to have a significant impact on agricultural production in the County,” Lake Charlotte Solar stated in their filing. “Applicants also conducted an analysis of potential alternatives to the site to avoid prime farmland impacts and determined that no feasible or prudent alternatives to the site exists.”
Regarding potential environmental impacts, Lake Charlotte Solar said the risk of soil and water contamination is low.
“Each of the solar panel manufacturers being considered to provide panels completes testing for hazardous substances,” Lake Charlotte Solar stated in their filing. “The manufacturers have confirmed that no hazardous substances are leached from the tested solar panel products resulting in leachate concentrations that exceed regulatory standards.”
Minnesota Public Utilities Commission Environmental Review Manager Jessica Livingston said the project did have to make some changes as a result of public comments. This includes a visual screening plan required to mitigate visual impacts on residences adjacent to the project, as well as special conditions relating to noise.
Other concerns raised by the Department of Transportation for blowing snow control and the DNR for vegetation and wildlife were also addressed through lighting and dust control changes that require non-fluoride products, wildlife-friendly lighting and erosion control.
While these were unique for the area, Livingston said it was not out of the ordinary for changes like this to happen to a project.
“The location next to the lake was particularly of interest for the public, so that’s where some special conditions for water came out of,” she said. “It’s not uncommon for solar projects to be located next to things like that, so not necessarily new for the PUC.”
Martin County Commissioner Billeye Rabbe, who serves the Rutland Township area, said they have been meeting regularly with project representatives. Rabbe said she has heard optimism from those giving their land to the project, and the unhappiness from those who do not want to have solar panels near where they live.
Ultimately, Rabbe said the county board’s rules don’t apply because of the size of the project and it going through the Minnesota Public Utilities Commission, and the county board was not consulted about whether it should happen or not.
“My role has been a feeling of helplessness,” Rabbe said. “You try to figure out what you could do, but there was nothing you could do either way. There’s people that think this is a good thing, and there’s some people who think it is not. There are both sides. It makes you wonder what leadership role you have as far as the county is concerned when, and I use the word power very cautiously, but you have no power. The power is taken away.”
The next step for the project will be a pre-construction review process, where Lake Charlotte Solar and Geronimo Power work with the PUC to file compliance documents before an official meeting is set up between project officials and the PUC.
For more information on the project, visit puc.eip.mn.gov/web/project/16339.

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Two molecules work together to seal microscopic gaps in perovskite solar cells – Tech Xplore

Two molecules work together to seal microscopic gaps in perovskite solar cells  Tech Xplore
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Villagers in Saint Joachim voted 97 percent in favor of a solar canopy over their flooded cemetery, and the 5,000 panels on top were an afterthought to a drainage problem – Energies Media

Energies Media
The problem at this cemetery had nothing to do with the dead.
Every winter the water table came up through the peat and stood in the plots.
Families arriving to tend a grave found the ground soft and the paths under water.
The obvious fix was a roof.
Then somebody asked a small question about what to put on top of the roof.
Which is how a drainage job turned into 1.3 megawatts.
The village sits in a wide peat basin north of the Loire estuary, and the land barely clears the waterline.
When the town outgrew its churchyard, the only ground available dropped to effectively zero elevation, which is a burial site that fights the wetland every winter.
Draining it would be constant work. Peat holds water rather than shedding it, and a marsh does not have anywhere lower to send it.
Lifting the whole site would mean importing fill by the thousand tons into a protected wetland.
So the engineering went upward instead. Keep the rain off the plots, catch it, and pipe it somewhere it can be used.
A rigid canopy on steel posts was already the answer before anyone mentioned electricity, and the modules were a later addition to a frame that had to be built regardless.
The canopy runs to about 86,000 square feet, roughly the footprint of a large supermarket, carrying 5,000 panels.
The tilt is a compromise rather than an optimum. It is shallow enough to let diffuse light reach the graves beneath and steep enough to shed water and keep the array productive.
The rain it collects does not go to waste. It is piped to the sports field next door, which needs it in the dry months precisely when the cemetery does not.
The structural constraint is the one worth noticing. Nothing could be anchored into the plots.
Every post had to land in the gaps between graves, and the frame had to carry both the panels and a full snow and wind load from those positions only.
That is a stiffer and more expensive structure than a field mount, and it is the cost a normal site never has to pay.
The installation runs to about 3.6 million dollars, which is the largest single investment the commune has made in a generation.
It carries a 97 percent approval rate from an open public vote, which for a project involving a cemetery is not a rounding error.
The distribution runs through a local association. Roughly 420 people had signed up as members at the time of reporting, at an entry fee of about five dollars.
The town itself has around 4,000 residents, and the target is more than a thousand connections including a nursing home and local businesses.
Estimated household savings run 160 to 270 dollars a year.
The association president has said that no project in France has shared electricity across this many people, and that above a thousand participants it would be the first.
Sharing the output of a solar canopy fairly across a whole town is harder than generating it.
The legal framework is collective self consumption, which lets a community pool local generation without every household owning a panel.
But the arithmetic only balances when generation and demand track each other, and a cemetery produces at midday while most residents are out.
Subscribers still draw from the grid for the hours and the seasons the canopy cannot cover, so this is a reduction in bills rather than independence from anything.
Splitting the output also needs a custom algorithm reading every participant’s consumption at half hour intervals and settling monthly, which is a lot of software for one village.
The land use logic is the same one that puts panels over working crops, and it runs into the same timing problem.
This project matters less for its output than for the siting rule it breaks.
Conventional solar siting looks for flat land, clear title and easy grid access, and a cemetery fails all three on paper.
It also has advantages nothing else does. The land was permanently committed generations ago, it will never be developed, it already needed a roof, and no farmer has a competing claim on it.
The counterargument that solar is eating farmland has always been weak, since the arrays cover a rounding error of American acreage, but this removes even that.
Worth checking before anyone copies it. The project was announced for summer of 2025 and a prototype section went up in March of 2024, and no completion figures have been published since.
The engineering constraints were real and the cost premium is real, and both were accepted here because the roof was going up anyway.
That is the transferable part. Not the graveyard, but the sequence, where the structure was justified first and the panels were the cheap addition on top.
Hugo is an engineer with strong technical expertise. Multilingual from an early age, his writing combines technical clarity with a strong interest in science and energy.
Hugo is an engineer with strong technical expertise. Multilingual from an early age, his writing combines technical clarity with a strong interest in science and energy.
Hugo is an engineer with strong technical expertise. Multilingual from an early age, his writing combines technical clarity with a strong interest in science and energy.

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Australian manufacturer plans 500 MW perovskite-silicon tandem solar module factory – pv-magazine.com

The Australian Renewable Energy Agency (ARENA) announced it would provide University of Sydney researchers with AUD 7.25 million ($5.2 million) towards a AUD 19.5 million project to develop more durable Silicon (Si)-perovskite tandem solar cells in order to maintain their high efficiencies for commercial use.
The University of Sydney team will partner with Brisbane-based solar panel manufacturing startup Unison Solar Energy and scientists from Singapore’s Nanyang Technological University to take the next-generation technology from research towards commercial-scale production. 
“Our ambition is to pioneer a new era of Australian solar manufacturing and commercialize leading technologies here at home,” Unison Solar Chief Executive Officer Allen Guo said.
Si-perovskite tandem cell technology has demonstrated the potential to overcome the performance limitations of current solar technologies that rely on silicon as the sole semiconductor. Silicon’s conversion rate – the amount of solar energy it converts into electricity – currently peaks at about 25% but the researchers said Si-perovskite tandem cell technology could theoretically deliver conversion efficiencies of about 40%.
Team leader Professor Anita Ho-Baillie, John Hooke Chair of Nanoscience at the University of Sydney Nano Institute and School of Physics, said the researchers’ efforts have focused on stacking perovskites, made from synthesising metal with halogens, on top of silicon to form a tandem solar cell, rather than using silicon as the sole semiconductor. 
“There isn’t much room for silicon to improve because its theoretical limit is only 30%, but for perovskite-silicon tandem, it is about 40%,” she said. 
The research team has already shown the greater efficiency of the Si-perovskite technology, achieving Australia’s first 30% efficient Si-perovskite tandems on small and large areas. The team has also reported tandem cells passing industry standard tests against thermal extremes and moisture.  
Despite the potential of the technology, scaling devices beyond the laboratory and ensuring their stability under real-world conditions has proven challenging. Perovskite materials can break down when exposed to light, heat, moisture and mechanical stress.
Ho-Baillie said the new funding will help the researchers prove the reliability of Si-perovskite cells under a series of industry standards and take tandem-cell technology one step closer to becoming commercially viable. The ultimate goal is to improve the cells’ ability to maintain their conversion rate over the life expectancy of solar panels. 
“This is a fantastic opportunity for us to make research we’ve been doing at the university for the last six years translational,” she said. “Our next round of testing will prove this technology’s ability to cope with UV light and mechanical stresses.”
Unison Solar, which is establishing a solar panel production facility in Brisbane’s outer suburbs with an initial 500 MW manufacturing capacity, will work with the researchers during the commercialisation stage.
Guo, a former chief operating officer at Jinko Solar, said the Queensland-headquartered company will assess manufacturing costs, supply chains, customer needs and pathways to pilot production and scale-up.
“This project marks the beginning of collaboration with leading Australian research institutions for Unison Solar Energy,” he said, with the company aiming to establish gigawatt-scale production of advanced solar products in Australia.
Goa, a former chief operating officer at Jinko Solar, said Unison’s goal is to establish a manufacturing-ready technology platform capable of delivering next-generation tandem solar products with outstanding performance and long-term field reliability.
“Australia has been at the forefront of global solar research for more than 50 years, but local manufacturing remains limited and has not reached the scale our energy transition demands,” he said. “By combining Unison’s capability, technology and vision with ARENA’s support and the University of Sydney’s research expertise, we intend to deliver affordable, high-quality Australian-made solar products to Australian families. This is the start of our exciting journey.”
The project is one of 20 research and development initiatives to secure funded as part of a $105.6 million funding round announced by ARENA.
The funding will support projects spanning improved efficiency, cost and stability across advanced cells and modules, to innovations that can help improve solar farm deployment, operations and maintenance. and reduce the levelized cost of electricity (LCOE).
“Australia has played a leading role in the development of solar technology, and these projects will help ensure we continue to strengthen that position,” ARENA acting CEO Chris Faris said.
“The portfolio brings together a mix of near-term improvements and breakthrough technologies that have the potential to lower costs, improve performance and accelerate the deployment of solar energy both in Australia and around the world.”
“Achieving ultra low-cost solar requires innovation across the entire value chain. From the solar cells and modules themselves through to the way solar farms are built, operated and maintained, these projects will help unlock practical solutions that support a faster, more affordable energy transition.”
The funding is to be delivered over five years, commencing in 2027.
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India’s power demand is surging, but some solar energy is going to waste – morning-times.com

Some clouds and possibly an isolated thunderstorm in the afternoon. High 84F. Winds W at 5 to 10 mph. Chance of rain 30%..
Overcast with rain showers at times. Low 66F. Winds light and variable. Chance of rain 40%.
Updated: September 3, 2026 @ 1:14 am
FILE – Workers walk through a swamp to install electric transmission towers for the Adani Renewable Energy Park near Khavda, Bhuj district, near the India-Pakistan border in the western state of Gujarat, India, Sept. 21, 2023.
FILE – Workers install solar panels at the under-construction Adani Green Energy Limited’s Renewable Energy Park in the salt desert of Karim Shahi village, near Khavda, Bhuj district near the India-Pakistan border in the western state of Gujarat, India, Sept. 21, 2023.
FILE – A motorcyclist ride past wind turbines, an Adani Group project, near Sadla village in Surendranagar district of Gujarat state, India, March 20, 2023.
FILE – Team leader K. Sridhar, center, closes the doors after a routine check of lithium-ion batteries of 500-kilowatt battery energy storage system in Thiruvallur District, on the outskirts of Chennai, India, July16, 2024.

FILE – Workers walk through a swamp to install electric transmission towers for the Adani Renewable Energy Park near Khavda, Bhuj district, near the India-Pakistan border in the western state of Gujarat, India, Sept. 21, 2023.
FILE – Workers install solar panels at the under-construction Adani Green Energy Limited’s Renewable Energy Park in the salt desert of Karim Shahi village, near Khavda, Bhuj district near the India-Pakistan border in the western state of Gujarat, India, Sept. 21, 2023.
FILE – A motorcyclist ride past wind turbines, an Adani Group project, near Sadla village in Surendranagar district of Gujarat state, India, March 20, 2023.
FILE – Team leader K. Sridhar, center, closes the doors after a routine check of lithium-ion batteries of 500-kilowatt battery energy storage system in Thiruvallur District, on the outskirts of Chennai, India, July16, 2024.
BENGALURU, India (AP) — When India’s power demand surged at the height of summer, the country struggled to meet evening needs as air conditioners ran longer amid hotter nights. Despite this demand, some renewable energy providers were told to limit their output because the country had more clean electricity available than its grid could safely handle.
In the last 15 months, India curtailed nearly 11 terawatt-hours of solar generation — enough electricity to power about 10 million homes, according to government data and research by energy think tank Ember. That solar power went unused even as extreme heat and poor monsoon rains drove up demand for power in India for cooling and pumping groundwater for agriculture.
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Emmitt Smith accused of fraud in lawsuit over $2.5M Texas solar deal – nbcdfw.com

Former Dallas Cowboys star Emmitt Smith and several of his business partners are accused in a new civil lawsuit of misleading a tribal economic development entity into providing $2.5 million for a Texas solar project, then using the money for a different purpose.
A lawsuit was filed Aug. 31 by tribally owned economic development organization Kituwah LLC. Kituwah invests on behalf of the Eastern Band of Cherokee Indians.
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The complaint names Smith, David Mosley, their Dallas-based company 4 13 Solutions Inc., Darrel Wilson and Wilson Holdings of North America LLC as defendants. It alleges Smith and Mosley induced Kituwah to participate in a joint venture involving a proposed solar farm known as Project Exodus by making false or misleading representations about the project’s progress, financing, potential investors and expected returns.
The allegations have not been proven in court. NBC 5 has reached out to those named in the suit for comment and has not received a response.
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According to the lawsuit, Smith and Mosley introduced Kituwah to a proposed Texas solar development known as Project Exodus in 2023. A project summary described the solar farm as 4 13 Solutions’ “flagship project,” expected to begin operating by the end of 2024 and generate nearly $13.8 million in first-year net income.
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Kituwah alleges it agreed to partner with 4 13 Solutions and Wilson Holdings through a new company, Jabez 4 10 LLC, to acquire interests in the project. In September 2023, Kituwah loaned Jabez $2.5 million, with the understanding that the money would help acquire GCI’s rights and ownership interests in the development.
After the money was transferred, 4 13 Solutions told Kituwah that the full $2.5 million had been paid to GCI, according to the complaint. Kituwah alleges it never received documentation confirming that payment or the promised transfer of project interests.
In the lawsuit, Kituwah says it later discovered the money had instead been paid to Wilson Holdings, which had previously provided funding to 4 13 Solutions.
An agreement did provide for Wilson Holdings to receive $2.5 million, but only after Jabez obtained permanent financing for Project Exodus. Kituwah alleges that financing was never secured. The complaint says Wilson later told Kituwah’s attorneys he did not believe permanent financing had been received and did not know what triggered the payment to his company.
The lawsuit accuses Smith individually of fraudulent inducement and breach of fiduciary duty. It points to emails Smith allegedly sent during negotiations, including one saying a bridge loan from Kituwah was “crucial to our success and our brand.”
The $2.5 million loan was due by Feb. 1, 2024. Kituwah alleges none of the principal has been repaid and says it repeatedly sought payment before filing suit.
Kituwah is seeking at least $2.5 million in damages, plus interest, costs and other amounts that could be determined at trial.

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More Solar Panels on the Horizon for Santa Barbara County – The Santa Barbara Independent

16,000 Acres of Utility-Scaled Panels Now Proposed
At Tuesday’s county board meeting, supervisors began seriously considering how to approach the installation of utility-scale solar systems. Supervisor Laura Capps told her fellow board members that other California counties were “far outpacing” Santa Barbara. Currently the county has only allowed 600 acres of panels to be built at an outpost in Cuyama Valley. 
In July, the board had first discussed allowing more large-scale solar projects, but had balked at the 16,000 acres proposed by the county planning commission, and instead suggested allowing the construction of only 10,000 acres. 
Capps, however, said that since that July meeting she had been learning just how far behind the county was in adopting the large-scale use of solar panels for general utility use. She urged accepting the 16,000-acre countywide cap on solar projects proposed by the Planning Commission. The 10,000-acre cap, she said, “just doesn’t cut it.” (For reference, 10,000 acres is only two percent of the county’s total agricultural land.)
However, supervisors Bob Nelson and Steve Lavagnino worried about being “solar-ed over” in their North County districts, where much of the proposed solar will likely go. 
The supervisors will have to decide where the solar panels will go and how much acreage should be allowed; whether that acreage could be split between North and South County — perhaps based on population, electric service areas, or available agricultural land; and where should the battery storage be located for all that newfound energy.
Santa Barbara County Fire Marshal Fred Tan assured the board that the installation of lithium-ion batteries could be safely contained. The fire department will use appropriate mitigation measures, he said, implementing new energy storage policies they had adopted earlier this year.
The board also discussed limiting solar on non-prime ag-land to 15 percent and allowing on-site solar for agricultural use up to 15 acres.
Ultimately, the board directed staff to confirm the agricultural allowance up to 15 acres, create a 16,000-acre countywide cap based on the Planning Commission’s recommendation, accept a 50-foot minimum setback for energy storage systems and not split the acreage between North and South County.
Final consideration for the utility-scale solar regulations is scheduled for September 22.
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India's Power Capacity to Cross 2,000 GW by 2047, Solar to Lead Tenfold Growth – Saur Energy

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India’s installed power capacity is set to more than quadruple over the next two decades, crossing 2,000 GW by 2047, according to a new outlook report unveiled in New Delhi. The report, titled “India’s Power & Energy Transformation Outlook,” was released by ENCIS.
Solar energy will do the heavy lifting in this transformation, with capacity expected to jump nearly tenfold — from 119 GW today to over 1,100 GW by 2047. The scale of that growth, the report notes, will demand sustained investment not just in generation but in grid infrastructure, energy storage and the broader ecosystem needed to support it.
The session featured industry leaders, including Bhupinder Singh Bhalla, IAS (Retd.), Chairperson of the Governing Council for the event and Former Secretary, Ministry of New and Renewable Energy, and others.
Speaking at the session, Bhalla said, “India’s energy transition is now about orchestration, not just expansion. Our next phase will be judged not by the number of gigawatts added, but by whether we build a system that is reliable every hour, affordable for every consumer, flexible under stress, and secure against disruption.”
The report reveals that non-fossil sources already make up 53% of India’s 540 GW installed capacity, a target hit five years early. Meanwhile, peak electricity demand has nearly tripled since 2000 and is projected to hit 366 GW by 2032, a 34% rise fuelled by new-age loads from data centres, e-mobility and green hydrogen.
CEA Chairperson Ghanshyam Prasad said, “India is experiencing phenomenal growth in the power sector, with record annual capacity additions and a rapid shift toward clean energy. But it’s not just about adding megawatts; our real challenge now is to build a grid and market architecture that can integrate renewables, storage, and new technologies at scale, ensuring reliability, flexibility, and affordability for a future-ready economy.”
To stay on track, India must nearly triple its renewable energy deployment by 2030, taking non-fossil capacity to 500 GW while holding the grid steady. Grid-scale storage faces an even steeper climb, a forty-fold increase to 200 GWh by 2030, which the report calls the biggest infrastructure leap the sector has ever attempted.
On the ground, smart meter rollout is progressing fast, with 250 million units expected to be installed by FY2028, enough to bring 90% of consumer demand under real-time management and push national AT&C losses below 10% for the first time. Digital reforms have already brought losses down to 15%, but distribution remains the sector’s weak link, with 44 GW of renewable capacity stuck in financing or contractual limbo.
Even as renewables scale up, coal will remain central to grid stability. Plants will need to run at a minimum technical load of 40% and hit ramp rates of 3% by 2030. Overall, the report pegs India’s power sector investment requirement at $0.5 trillion by 2030, alongside a need for more than a million newly skilled workers to drive the digital and clean energy transition.
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Distributed prices remained divergent today, with some specialized mod – Shanghai Metals Market

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Tin perovskite cell longevity and efficiency improved by heteroatom additive – pv magazine Australia

Researchers from the Sophia University (SU) and the National Institute for Materials Science (NIMS) in Japan have minimised tin-based pervoskite solar cell oxidisation, which affects the efficiency and longevity of the cells, progressing the technology toward commercial viability.
Their study introduces 2-aminobenzothiazole (2-ABZ) into quasi-two-dimensional (q-2D) Ruddlesden–Popper tin perovskites, creating a multifunctional passivation strategy that enhances both photovoltaic performance and device longevity.
2-ABZ is a heteroatom molecule containing nitrogen, carbon, sulfur, and hydrogen, the researchers said.
“Unlike many additives that target a single degradation mechanism, 2-ABZ performed several complementary functions throughout the formation and operation of the perovskite film.”
The researchers propose that the additive functions as a multifunctional molecular stabiliser throughout the entire device architecture, and by regulating crystallisation, reducing trap formation, preventing ion migration, inhibiting tin oxidation, and improving interfacial energy alignment, 2-ABZ addresses several of the intrinsic weaknesses that have limited the efficiency of SnPSCs.
SU Faculty of Scient and Technology Department of Materials and Life Sciences Project Lead Professor Yuko Takeoka said the buildup of 2-ABZ at the interface is crucial for decreasing buried defects in the perovskite layer by creating densely populated nucleation sites at the base of the layer, resulting in the production of a high-quality and stable film.
Stability
Stability of the devices was also found to be significantly enhanced, where surface analysis revealed that 2-ABZ suppressed the oxidation of Sn2+ to Sn4+, a major degradation pathway for tin perovskites.
X-ray photoelectron spectroscopy also showed a substantial reduction in oxidised iodine species, and time-of-flight secondary ion mass spectrometry confirmed that the migration of iodide was greatly inhibited, the researchers said.
“The benefits were reflected in long-term performance tests. Unencapsulated solar cells containing 2-ABZ retained 84.94% of their initial efficiency after 100 days of storage, whereas untreated devices retained only 48.95%.”
“During continuous operation under simulated sunlight, treated devices maintained nearly 89% of their original performance after 10 hours, while control devices degraded rapidly within the first hour. Installing Si-based solar cells requires wide, flat land, but PSCs are lightweight, flexible, and shape-controllable, making them a promising next-generation solar cell. However, ensuring their efficiency and longevity is important to improve their commercial viability.”
Takeoka said the findings form the research showed the way for developing safer lead-free solar cells, which could help expand the use of photovoltaic cells.
The study findings are published in Volume 10, Issue 11 of the Solar RRL journal on June 15, 2026

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Louisa County board denies permit for $1.2B Southpaw Solar project – KWQC

LOUISA COUNTY, Iowa (KWQC) – A proposed large-scale solar project in Louisa County has hit a roadblock after county officials voted against a key permit needed for the development.
The Louisa County Board of Adjustment voted 4-1 Tuesday to deny a special use permit for the Southpaw Solar project.
Developer Ranger Power proposed the project across roughly 3,500 acres in Louisa County. The proposal drew opposition from some people living near the planned development, with concerns ranging from the use of agricultural land to the project’s proximity to homes.
Katie Lawrence, a Louisa County resident who opposed the project, said protecting productive farmland was among residents’ biggest concerns.
“Our main focus was on keeping good ground, farm ground. It’s something we have a finite resource for,” Lawrence said. “Development is taking up so much of it that we have to protect the good stuff that’s still here.”
Lawrence said some residents were also concerned about how the project could change the area surrounding their homes.
“Most of us, it hinged on the fact that our houses were gonna be surrounded by solar panels,” Lawrence said. “Most of us, myself excluded, were gonna be surrounded on at least three and sometimes all four sides of our entire properties.”
In a statement to KWQC, Southpaw Solar said it remains committed to working with Louisa County leaders, landowners and residents as it considers what comes next.
“Southpaw Solar remains dedicated to working alongside Louisa County leaders, landowners and residents as we evaluate the path ahead,” the company said. “We believe successful projects are built through local partnership and a shared commitment to the community’s future.”
The company said the proposed project would represent a potential $1.2 billion investment in Louisa County and include up to 450 megawatts of solar generation and energy storage. Southpaw Solar also estimates the project would generate more than $20 million in cumulative tax revenue to support local services.
Southpaw Solar said it has also begun planning and carrying out several community initiatives benefiting project neighbors and nearby communities, including Letts, Fredonia and Columbus Junction. The company pointed to its investment in the Louisa County Multi-Purpose Barn as one example of that work.
“We look forward to continuing a constructive and open conversation with local stakeholders,” the company said.
The Board of Adjustment’s decision prevents the project from moving forward under the requested permit for now. Southpaw Solar did not say in its statement whether it plans to appeal or otherwise challenge the decision.
KWQC has also reached out to Louisa County for comment.
Copyright 2026 KWQC. All rights reserved.

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China’s installed solar power generating capacity surpasses coal power for the 1st time: National Energy Administration – globaltimes.cn

Solar rooftop photovoltaic power generation facilities are seen on a building in Qingdao, East China’s Shandong Province, on June 23, 2026. Photo: VCG
Western media outlets have long viewed China’s renewable energy progress with a bias rooted in competitive anxiety, warning …
China’s total installed power-generating capacity reached 3.99 billion kilowatts (kW) by the end of April, rising 14.2 percent …
The total capacity of China’s wind turbines and photovoltaic panels reached 820 million kilowatts by the end of …

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In milestone, solar power capacity edges out coal – RTHK News

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Ireland's installed solar capacity surpasses 3 GW milestone – enerdata.net

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Ireland has surpassed 3 GW of installed solar capacity, driven by rapid growth in utility-scale and rooftop solar (Irish government press release, 27/08/2026). The milestone comes just over a decade after the country had only 2 MW of solar capacity. The announcement follows a new record for solar generation on Ireland’s grid, with utility-scale output exceeding 1.3 GW earlier this week and supplying more than one-third of national electricity generation at the time. According to EirGrid, solar generation first exceeded 1 GW in April 2026, enough to supply around 500,000 customers.
Solar deployment has also accelerated in the residential sector, with more than 200,000 homes installing solar panels and over 120,000 households receiving Solar PV grants. The Sustainable Energy Authority of Ireland received more than 31,000 solar PV applications in the first seven months of 2026, up 76% from 2025.
The country continues to target 8 GW of solar capacity by 2030, supported by the Renewable Electricity Support Scheme (RESS), the Small-Scale Renewable Electricity Support Scheme (SRESS) and the Microgeneration Support Scheme (MSS).
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Why India Needs Coal Plants to Integrate 292 GW of Solar by 2030? CEA Explains – Saur Energy

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Why India Needs Coal Plants to Integrate 292 GW of Solar by 2030? CEA Explains Photograph: (AI)
As India scales up solar capacity, the Central Electricity Authority (CEA) committee has identified flexible operation and two-shift operation of older coal-fired units as a low-cost option to accommodate higher renewable generation and maintain grid stability.
India’s ambitious solar expansion could create a counterintuitive requirement for its ageing coal-fired power fleet: older thermal power plants may need to become more flexible to make room for more renewable energy on the grid.
A committee constituted to examine the impact of flexible and two-shift operation of thermal power plants has said that two-shift operation of 210 MW-and-below generating units that are at least 35 years old is important for integrating 292 GW of solar capacity by 2030. According to the committee, the approach could provide a low-cost route for renewable-energy integration while improving grid security and stability. 
The recommendation comes as India’s increasing solar penetration is changing the country’s electricity-demand profile, creating periods of very low net demand during solar-generation hours followed by sharp ramps in the evening when solar output declines.
The committee’s report points to a pronounced “duck curve” in India’s all-India demand profile as solar generation increases. On certain days, the difference between maximum demand and minimum net demand has reached around 82 GW. During the middle of the day, when solar generation is at its peak, thermal generators are already being pushed towards their technical minimum operating levels. This leaves limited room to reduce conventional generation further when additional solar power is available.
The report therefore calls for deeper turndown, faster ramping and more flexible operation of thermal units to maintain grid security and enable further renewable-energy integration. India’s all-India diurnal demand variation is around 75 GW, while national ramping requirements are typically between 250 MW and 300 MW per minute, and can rise to 500 MW per minute on certain days. 
The issue is not that coal-fired plants would generate more electricity to support solar. Instead, the committee’s proposed operating model would allow selected older units to back down or shut down during peak solar-generation hours and return during the evening peak.
Under the proposed two-shift model, plants would remain shut during the peak solar window — roughly 9 am to 4 pm or 10 am to 5 pm— and generate during the evening peak using a hot start. The report estimates that such plants could operate at around 60% plant load factor under this arrangement.  This effectively turns a portion of the existing thermal fleet into a form of “virtual storage”: coal plants reduce output when solar is abundant and return to the grid when solar generation falls.
The committee has identified 151 coal-based generating units with a combined capacity of 34.5 GW, all aged 35 years or more, for potential two-shift operation by 2030. After accounting for availability and auxiliary power consumption, these units could provide around 24.2 GW of flexible power/storage to the grid. 
The report argues that two-shift operation of older generating units could provide a cheaper renewable-integration option than battery storage, particularly because many of the identified thermal plants have already recovered much of their capital cost. The estimated capital expenditure for retrofitting the 151 units is around ₹30,200 crore, with the report estimating that the fleet could provide around 27 GW of equivalent storage. The corresponding BESS capacity is estimated to require approximately ₹1.75 lakh crore. 
For a 210 MW thermal unit, the report estimates the cost of renewable-energy integration through two-shift operation at around ₹1.46 per kWh. This could rise to ₹1.60 per kWh with higher capital expenditure. By comparison, the report cites a discovered BESS price of ₹3.61 per kWh for four-hour storage, while a six-hour BESS could cost more than ₹6 per kWh. 
The report estimates that the 34.5 GW fleet could provide 8–10 hours of support, depending on hot-start requirements. 
The push for greater thermal flexibility comes against the backdrop of actual renewable-energy curtailment. GRID-India highlighted grid-security challenges during May 2025, when system frequency remained above the Indian Electricity Grid Code operating band for nearly 20% of the time. On May 25, 2025, the national thermal fleet was backed down to approximately 58%, while nearly 10 GW of solar generation was curtailed through the TRAS emergency down-dispatch mechanism. Even after these measures, frequency rose to 50.48 Hz, raising concerns over safe and secure grid operation. 
The report’s recommendations consequently call for available turndown margins at thermal plants to be used to facilitate greater absorption of renewable energy across states and regions.
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Westbridge Sells Red Willow Solar-Plus-Storage Project for Up to CAD$26.7M – News and Statistics – IndexBox

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Canadian renewables developer Westbridge Renewable Energy has signed a definitive share purchase agreement to sell its 225MWac Red Willow solar-plus-storage project in Alberta, Canada. The project, which is at an advanced stage, has secured power plant and substation approvals from the Alberta Utilities Commission earlier this year and will be paired with a 100MW battery energy storage system.
According to the agreement, Westbridge will receive an upfront cash payment at closing plus additional milestone payments, with total receivables potentially reaching CAD$26.7 million (US$19.3 million). The buyer’s name was not disclosed, but three years ago Westbridge had agreed to sell a 1.4GW solar PV portfolio with BESS in Alberta to Greek developer Metlen Energy & Metals, formerly Mytilineos, which included the Georgetown, Sunnynook, Dolcy, Eastervale, and Red Willow projects.
Westbridge’s CEO, Stefano Romanin, commented that the sale validates the company’s development and monetisation strategy, noting its focus on siting projects in favorable locations with strong renewable resources, transmission access, and long-term strategic value.
Beyond Red Willow, Westbridge has other advanced-stage projects in Alberta, including the Dolcy solar-plus-storage project (up to 300MWac solar PV with up to 100MW BESS), the Eastervale Solar project (up to 300MWdc solar PV), and 350MWac of new standalone BESS projects. Outside Canada, the company is developing solar PV and BESS projects in the US, including in Texas and Louisiana, as well as data-centre development projects, positioning it as a developer in clean-power infrastructure.
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Egyptian Photovoltaic Solar Project Attracts 23 Local and Foreign Bidders – Industrial Info Resources

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Egypt’s Ministry of Electricity plans to increase power generation by 3,500 megawatts with the launch of a project as part of its five-year (2012-17) energy plan.

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Thailand's $6 Billion Response to LNG Price Surge: 1 Million Homes to Get Solar Panels in a Year, Adding 5 GW, Reducing Gas Dependency – CPG Click Oil and Gas

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Thailand has decided to turn the rooftops of 1 million homes into small solar power plants to reduce families’ exposure to fluctuations in liquefied natural gas. The plan aims to install 5 gigawatts of solar energy in just one year and will be supported by an emergency fund for energy transition of 200 billion baht (about US$6.01 billion). This comes after the conflict in the Middle East drove up international energy prices, once again exposing Thailand’s dependence on imported LNG, as reported by Reuters on September 2, 2026.
Additionally, the government plans to grant up to 50,000 baht (approximately US$1,500) per residence to reduce installation costs. State-owned banks are also expected to offer low-interest loans, while the net billing model will allow families to sell excess electricity back to the grid.
The scale of the change is noteworthy because the country still heavily relies on gas. In the first six months of 2026, over 60% of Thailand’s electricity came from this source, while renewables, including solar, accounted for about 10%. Moreover, over a quarter of the gas used for electricity generation is imported. Thus, any international spike in LNG prices can quickly impact electricity bills.
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The central goal is straightforward: 5 GW of solar panels distributed across 1 million homes.
If the government can meet the one-year timeline, Thailand will achieve an extremely accelerated expansion of distributed generation.
By the end of 2025, the country had approximately 3.6 GW of small-scale solar capacity, according to data cited by Reuters.
Thus, this new program alone could more than double the installed capacity in this segment.
Moreover, the expansion will be incorporated into the new national electricity development plan.
Therefore, the government does not view the initiative merely as a temporary response to the crisis.
The intention is to use the price shock to accelerate a structural change in the energy system.
The urgency becomes apparent when observing the electricity matrix.
In the first six months of 2026, natural gas accounted for over 60% of Thailand’s electricity generation.
Meanwhile, renewables, including solar, hovered around 10%.
This concentration increases vulnerability.
When gas prices rise, a significant portion of the electricity system feels the impact.
Furthermore, the country does not produce all the volume it needs domestically.
More than 25% of the gas used for power generation comes from imports.
Thus, Thailand faces not only the domestic price of the fuel.
It also needs to monitor the international market.
There is another factor at play.
According to data from Kpler cited by Reuters, approximately half of the LNG acquired by Thailand is bought on the spot market.
This market allows purchases without long-term contracts.
However, prices can vary very quickly.
When there is an oversupply, this can be advantageous.
On the other hand, geopolitical crises, maritime disruptions, or cold waves can trigger sharp increases.
It was precisely this risk that resurfaced in 2026.
Thus, the government began to see solar panels on residences not just as an environmental policy, but also as protection against international energy shocks.
The current crisis has reinforced this strategy.
The conflict involving Iran, the United States, and Israel has affected energy flows in the Middle East and increased the volatility of the oil and gas market.
At the beginning of September, Asian spot prices for LNG were above pre-conflict levels, while vessels sought alternative routes and operations to keep cargoes moving.
Consequently, importing countries began looking for ways to reduce exposure.
Thailand was not the only one.
The Philippines and Bangladesh have also expanded solar energy measures to decrease reliance on imported fuels, according to Reuters.
However, Thailand’s scale stands out.
One million homes represents a transformation spread throughout the country.
The funding will come from a much larger emergency package.
Thailand has approved a loan decree of 400 billion baht, approximately US$ 12 billion.
Of this total, 200 billion baht will be used to alleviate the immediate impacts of the energy crisis.
The remaining 200 billion baht, about US$ 6 billion, will be directed towards restructuring and transitioning the energy sector.
Therefore, the rooftop solar program is part of a broader strategy.
The country aims to alleviate current costs.
At the same time, it wants to reduce the risk of facing the same vulnerabilities in future crises.
This combination explains why the government decided to finance structural changes during an emergency.
To convince families to participate, the government needs to tackle a known obstacle: the initial cost of solar panels.
Thus, the plan envisions support of up to 50,000 baht per residence.
In the conversion presented by Reuters, this corresponds to approximately US$ 1,502.
Additionally, public banks are expected to offer financing at lower interest rates.
Thus, families that cannot afford to pay for the entire system upfront will have another option.
The government is therefore trying to tackle two barriers at once.
First, it reduces part of the price.
Then, it eases the financing of the remainder.
The financial structure will be crucial in determining whether the program can reach the scale of 1 million homes.
Producing energy during the day does not mean that all the electricity will be consumed immediately within the home.
This is why the government has also moved forward with a net billing system.
In this model, the home uses part of the electricity produced by its own roof.
Then, excess energy can flow to the grid.
The previously approved policy established a price of 2.20 baht per unit of excess electricity, with purchase contracts for 10 years.
Moreover, each meter can provide up to 5 kW within this specific program.
Thus, the roof not only reduces the consumption purchased from the grid.
At certain times, it can also generate income or credit for the owner.
The scale changed rapidly during 2026.
In an earlier phase, the Thai government had approved a goal of 500 MW for purchasing excess energy produced by homes.
However, the plan recently presented by Energy Minister Akanat Promphan points to 5 GW of capacity in residential rooftops.
In other words, the new ambition is ten times greater than that initial goal for purchasing excess energy.
This shows how the energy crisis accelerated decision-making.
Additionally, the government has shifted from a gradual incentive policy to a widespread implementation strategy.
The residential plan is part of a larger transformation.
Akanat Promphan stated that the new energy planning aims to increase the share of renewables to approximately 60% of national electricity generation.
In this scenario, gas will still play an important role.
However, its relative share would decrease.
This change would also reduce the need to purchase increasing volumes of fuel from abroad.
Therefore, the solar strategy has three simultaneous objectives:
reduce electricity bills, limit exposure to imported LNG, and accelerate decarbonization.
Thailand was once a regional reference in solar energy.
However, the pace of new installations has slowed since previous incentive policies expired, according to Reuters.
Thus, the new package also serves as an attempt to regain speed.
The difference lies in the scale.
Instead of primarily relying on large solar parks, the government aims to turn residential consumers into producers.
In this way, thousands of small systems begin to function as a distributed power plant across the territory.
It is a completely different architecture than that of a conventional power plant.
If the goal is evenly distributed, the plan would mathematically equate to approximately 5 kW of solar capacity per household.
This calculation serves only to visualize the scale.
In practice, individual systems may vary in size.
Even so, the calculation helps demonstrate how relatively small installations become enormous when multiplied by 1 million rooftops.
An isolated household system has a limited impact on the national grid.
However, 1 million of them add up to a capacity comparable to that of several large power plants.
Thus, the scale is born from repetition.
Installing solar panels represents only half of the challenge.
Electricity needs to enter a grid prepared to receive generation from thousands of points.
Therefore, the government has already mandated updates to connection rules and the so-called Grid Codes.
Additionally, utility companies will need to ensure that equipment and inverters meet appropriate technical standards.
This step is crucial.
During the day, entire neighborhoods can generate a large volume of electricity simultaneously.
Then, when the sun goes down, this production decreases.
Therefore, operators need to continuously balance supply and demand.
Solar expansion thus requires investment in grids, control, and flexibility.
Thailand has opened a specific process to register suppliers and installers.
Companies need to meet requirements set by metropolitan and provincial utilities.
Additionally, panels and inverters must comply with technical and safety standards.
This step aims to avoid a predictable problem.
When subsidies quickly create a gigantic market, thousands of consumers may hire installers without sufficient experience.
Consequently, the risks of electrical failures, fires, or underperforming systems increase.
Therefore, the government seeks to expand the market without abandoning quality control.
The initiative will also be incorporated into the Power Development Plan, Thailand’s long-term electric sector planning.
This plan covers approximately 25 years.
Thus, the government does not intend to remove the panels from the equation after the current crisis subsides.
On the contrary.
Residential generation will formally enter the electric expansion strategy.
This modifies how future power plants, grids, and fuel contracts will be planned.
If millions of homes generate more electricity during the day, the country may need a different combination of centralized generation.
However, there is an important limitation.
Solar panels produce electricity primarily during the day.
Meanwhile, national consumption continues after sunset.
Therefore, 5 GW of solar capacity does not mean 5 GW available 24 hours a day.
Thailand will still need sources capable of balancing the grid.
This could include gas, hydropower, battery storage, and other technologies.
Thus, the program reduces dependence, but does not immediately eliminate liquefied natural gas.
This distinction is important.
The policy functions as diversification.
Not as an instantaneous replacement of the entire current matrix.
While accelerating solar power, Thailand does not abandon gas.
The government aims to expand domestic exploration.
The state-owned PTTEP is expected to explore new reserves in the Andaman Sea and also assess opportunities related to Myanmar, according to Reuters.
Thus, the strategy has two fronts.
On one side, reducing the amount of gas needed.
On the other, decreasing dependence on more expensive international supplies.
Additionally, the country plans to negotiate long-term liquefied natural gas contracts.
This way, even imported fuel can arrive with greater price predictability.
Buying LNG on the spot market offers flexibility.
However, it leaves buyers exposed to crises.
Therefore, long-term contracts represent another protective tool.
They usually define pricing formulas and volumes over several years.
Consequently, a temporary shock can have a smaller impact.
Thailand intends to specifically increase this stability.
Meanwhile, solar panels reduce part of the demand.
The combination creates a sort of layered defense:
more domestic energy, more renewables, and gas contracts less vulnerable to immediate fluctuations.
This may be the most important point of the change.
For years, governments justified solar energy primarily by emissions reduction.
Now, Thailand is also presenting the resource as economic protection.
When a household generates electricity on its own roof, it needs to buy less energy from the grid during that period.
Consequently, the electricity company needs to burn less fuel at certain hours.
On a national scale, this can reduce the need for imports.
Thus, the sun also serves as a kind of insurance against external shocks.
The strategic shift occurs precisely when cheap and predictable energy is once again viewed as an economic advantage.
Thailand is thousands of kilometers away from the Middle East.
Even so, a war in that region can directly impact the cost of electricity within Bangkok.
This happens because the energy market is global.
If LNG transport faces risks or if buyers compete for fewer available cargoes, prices rise.
Then, importers pass part of the cost to the energy chain.
Thus, a distant geopolitical crisis reaches the domestic consumer.
Solar energy cuts a piece out of that link.
The sun hitting a Thai rooftop does not need to traverse narrow maritime straits, be liquefied, transported on ships, or purchased in dollars.
Reuters highlighted that other major Asian importers have begun to follow a similar strategy.
The Philippines and Bangladesh have also expanded distributed solar initiatives in response to rising LNG prices.
This trend could grow.
Asia is home to some of the largest global buyers of liquefied natural gas.
Moreover, many countries in the region have excellent solar incidence.
Therefore, when gas prices rise, the economic comparison shifts rapidly.
Panels that once seemed expensive now compete with increasingly volatile imported fuels.
The program also changes the traditional image of energy infrastructure.
A large-scale plant concentrates equipment in a single area.
In contrast, distributed generation spreads thousands of small installations.
In the Thai case, it would amount to up to 1 million different points.
This reduces the need to find a single area to build a massive plant.
On the other hand, it increases operational complexity.
Each home needs a design.
Each installation needs to comply with standards.
Moreover, each inverter needs to interact correctly with the grid.
Therefore, the challenge is not just in the total number of panels.
It is in executing 1 million small projects within a very short timeframe.
The ambition to install 5 GW in a year requires a massive supply chain.
Panels will be needed.
There will also be demands for inverters, metal structures, cables, meters, and labor.
Additionally, companies will need to conduct inspections and connections.
Consequently, an energy program also turns into an industrial and logistical challenge.
Thailand will need to ensure sufficient equipment without compromising quality standards.
At the same time, utilities will have to process an exceptionally high number of requests.
Therefore, the biggest risk may not lie in lack of interest.
It could be in the speed required to meet all of them.
If 1 million households received the maximum amount of 50,000 baht, the theoretical disbursement could reach up to 50 billion baht.
This calculation represents only a mathematical reference based on the announced ceiling.
The government may still define rules, limits, and different levels of support.
Therefore, it does not mean that exactly 50 billion will be disbursed.
Still, it shows why the program needs a large-scale fund.
Additionally, state banks will offer low-interest loans to cover part of the remaining costs.
Thus, public resources can mobilize even greater private investments.
An expansion of 5 GW also creates economic opportunities.
Solar energy companies will need to increase their teams.
Distributors will need to import or manufacture equipment.
Moreover, electricians, designers, and technicians may find a significantly higher demand.
Consequently, the program will not only impact the energy sector.
It may also stimulate services, logistics, and construction.
However, rapid growth carries risks.
If demand outstrips supply, prices may rise.
Therefore, oversight and supplier registration will play a crucial role.
Regulations are specifically designed to prevent this effect.
The government requires equipment to meet technical standards, including IEC norms and national specifications.
Additionally, utilities will participate in the supplier qualification process.
In this way, public subsidies will be tied to systems that meet minimum criteria.
The goal is to protect the consumer.
It also reduces risk for the grid itself.
After all, a million improper installations could create problems that are much larger than a few isolated systems.
With panels and surplus sales, the traditional relationship changes.
Previously, households only consumed electricity.
Now, they can also produce.
At times, they purchase energy.
At other times, they send energy to the grid.
This model creates the so-called prosumers, individuals who simultaneously produce and consume.
As the number of participants grows, utilities will need to modify their metering, billing, and planning systems.
Thus, the transformation does not only occur on rooftops.
It also extends to the administrative systems of electricity companies.
Even if the project reaches 5 GW, Thailand will still need other renewable sources to achieve 60% of electric generation.
Large solar parks will be necessary.
In addition, other technologies will need to gain a share.
Transmission and storage networks will also need to keep pace.
Therefore, rooftops represent just a part of a larger shift.
Still, they hold significant political importance.
The benefit appears directly at the residence.
Consumers can visualize the equipment.
Additionally, they may see a reduction in grid-purchased consumption.
This makes the program much more tangible than large, distant projects.
The emergency decree outlines the strategy.
Of the 400 billion baht authorized, half faces immediate shock.
The other half seeks to change the system that left the country exposed to the shock.
This division is unusual.
Typically, emergency policies concentrate resources only on temporary subsidies.
Here, however, the government allocated 200 billion baht for energy transition.
Thus, the crisis also finances infrastructure that will continue to exist after LNG prices fall.
This is an attempt to prevent the next shock from encountering exactly the same energy matrix.
Despite the solar ambition, gas will remain relevant.
It has the flexibility to respond quickly to changes in demand.
Moreover, existing plants still have years of operational life.
Therefore, the country is trying to reorganize the balance.
Solar energy is growing.
Meanwhile, domestic gas production may increase.
Additionally, long-term contracts are replacing part of spot purchases.
In this way, the strategy does not rely on a single solution.
The goal is to reduce vulnerability.
Thailand already had solar targets before the current crisis.
However, installations had lost momentum.
Now, high energy prices have changed the economic incentive.
Thus, what previously functioned mainly as climate policy is also becoming a consumer protection measure.
This change could accelerate decisions.
Families start to see solar panels as a way to reduce bills.
The government sees decreased dependence on imports.
And the electric system gains a domestic source.
The same pressure for energy can produce completely different responses depending on the structure of each country.
By the end of 2025, small-scale solar capacity was estimated at approximately 3.6 GW.
Now, the government wants to add another 5 GW in just one year.
If the target is met, the jump will be significant.
Additionally, 1 million families will participate directly in electricity generation.
Each will be able to reduce consumption.
Many will also be able to sell excess power.
At the same time, the country will reduce some electricity it would need to produce by burning gas.
Therefore, the impact will not be limited to rooftops.
It will also appear in LNG terminals, in power plants, and in grid planning.
The numbers make the scale clear.
The energy transition fund has approximately US$ 6.01 billion.
The government aims to reach 1 million residences.
The goal is to install 5 GW of solar panels in one year.
Each family can receive up to 50,000 baht in support, as well as access to credit.
Meanwhile, gas still accounts for more than 60% of electricity generation, with a significant portion coming from abroad.
Therefore, the government is trying to use an international crisis to change a dependency built over decades.
Instead of merely subsidizing bills while LNG remains expensive, Thailand aims to place generation directly onto rooftops.
If successful, the country will have transformed 1 million rooftops into part of its defense against the next international gas price surge.

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Author for the Click Petróleo e Gás portal since 2019, responsible for publishing over 8,000 articles that have garnered millions of views, combining technical expertise, clarity, and engagement to inform and connect readers. A Petroleum Engineer with a postgraduate degree in Industrial Unit Commissioning, I also bring practical experience and background in the agribusiness sector, which broadens my perspective and versatility in producing specialized content. I develop content topics, disseminate job opportunities, and create advertising materials tailored for the industry audience. For content suggestions, job vacancy promotion, or advertising proposals, please contact via email: santizatagpc@gmail.com. We do not accept resumes
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U.S. DOE announces $12 million space solar fund – Solar Builder

The U.S. Department of Energy (DOE) has launched a $12 million fund for the research and development of space-based solar technologies, with DOE officials announcing the fund on Sept. 1.
Aiming to expand domestic manufacturing of solar panels for outer space applications, the Space Photovoltaics (PV) Research and Development Partnership Intermediary Agreement (PIA) opportunity “will help ensure the next generation of space photovoltaics (PV) is developed in America,” the DOE says.
Led by the department’s Integrated Energy Systems Office (IESO), the program hopes to accelerate technical innovation on U.S. shores, driving down prices of domestic space solar products and projects.
“The next frontier for solar PV power generation is in space,” says assistant Secretary of Energy Audrey Robertson. “As demand for space-grade PV skyrockets, this investment will establish American leadership in next-generation, space-based PV, bolster our national security, and enhance our economic competitiveness.”
The funding will focus on both solar cell innovation and “rapid production and demonstration,” according to the DOE. Winning cell innovation projects will be awarded $1.5 million each, and production and demonstration projects will receive $2 million each.

Funding energy on the final frontier

What makes space solar so exceptionally valuable, the DOE says, is the removal of solar energy’s greatest barrier to operations: weather. The vast majority of terrestrial solar projects are subject to interruption thanks to inclement weather conditions, and all terrestrial projects are, of course, at the mercy of Earth’s rotation.
Positioning solar energy projects in space solves both of those problems with ease, DOE officials say. Despite policy changes largely limiting solar and other renewable energy projects in the U.S., the second Trump administration’s race for energy security and “space superiority” has kept the door open for space solar initiatives like the PIA.
“Space PV also has the potential to facilitate major advances in spaceflight and further the Trump Administration’s space superiority agenda,” DOE representatives say. “The United States, a longstanding global leader in PV technology, developed the first solar cells specifically tailored for spacecraft and, in March 1958, launched the world’s first solar-powered satellite.”
The PIA will fund space-based solar projects for up to three years, with both university and industrial research laboratories eligible for the R&D opportunity.
Potential applicants for the Department of Energy’s space solar fund must complete their bid for department funding Oct. 8. TechWerx, the DOE’s government-funded innovation hub, will host an informational webinar on the research fund Sept. 15.



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Malaysia's Ministry of Energy Transition and Water Transformation laun – Shanghai Metals Market

Data Source Statement: Except for publicly available information, all other data are processed by SMM based on publicly available information, market communication, and relying on SMM's internal database model. They are for reference only and do not constitute decision-making recommendations.
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Horsham solar farm reaches grid connection milestone – Utility Magazine

Horsham solar farm reaches grid connection milestone  Utility Magazine
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Germany's Third Rooftop Solar Tender: 296.3 MW, Bid Cap at €0.10/kWh – News and Statistics – IndexBox

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Germany’s federal network agency, the Bundesnetzagentur, has opened its third rooftop solar PV tender of the year, targeting 296.3MW of new capacity. The maximum bid price remains at EUR0.10/kWh (US$0.12/kWh), and bidders are required to pay for their bids, unchanged from the two earlier rooftop tenders in February and June, which sought 282.7MW and 296.3MW respectively.
According to the Bundesnetzagentur, the government plans to launch a third utility-scale solar tender in December, which would push total utility-scale capacity tendered above 6GW, compensating for some shortfall in rooftop solar. So far, the two completed rooftop tenders have awarded 363.5MW out of a maximum 579MW available.
This disparity in tender interest comes as Germany sets new solar output records. Data from the Fraunhofer Institute for Solar Energy Systems (ISE) shows that in the first half of the year, solar PV generation rose 10% year-on-year, exceeding 40TWh for the first time. Ground-mount solar drove most of the growth, with 3.5GW of new capacity added between the first half of 2025 and the first half of 2026, compared to 2.1GW of rooftop capacity in the same period.
The Bundesnetzagentur is keen to expand rooftop tenders under the Solarpaket reforms introduced in 2024, aiming to increase annual rooftop capacity awarded through tenders to 2.6GW, up from the current 1.1GW target. However, the government awaits a European Commission decision on whether the reforms comply with state aid rules. The agency noted that the commission is reviewing the latest tender, and if no decision is reached by 30 September, the day before the bidding deadline of 1 October, the tender will proceed with 296.3MW on offer and a minimum bid size of 1MW.
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2.3 Lakh Delhi Homes To Get Free Solar Panels, Existing Subsidy To Continue – NDTV

2.3 Lakh Delhi Homes To Get Free Solar Panels, Existing Subsidy To Continue  NDTV
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Urban density and residential solar adoption: evidence and theory – Frontiers

Urban density and residential solar adoption: evidence and theory  Frontiers
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Thai households with rooftop solar already save on bills. Raising the net billing cap could mean they save 77% more than households without – Zero Carbon Analytics

Posted on: Apr 2026
Reading time: 11 min
Posted on: 02 Apr 2026
Reading time: 11 min
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An increasing number of Thai households are installing rooftop solar PV to generate their own power and reduce bills. According to official sources, rooftop solar for residential and commercial use grew from 2 MW in 2019 to 3.3 GW in 2024 – a 1650-fold increase. 
Rooftop solar makes up a major share of Thailand’s total solar capacity, accounting for a third of total installed solar generation capacity by 2024.1Zero Carbon Analytics analysis. Rooftop solar capacity calculated from Energy Regulatory Commission (ERC)’s annual reports from 2019, 2020, 2021, 2022, 2023 and 2024. Total installed solar capacity retrieved from the 2024 ERC report. TransitionZero used satellite imaging to estimate residential solar capacity specifically, and found there to be around 1.38 GW installed in 2025.2The Energy Regulatory Commission of Thailand has not published official 2024 figures for residential rooftop solar capacity.
Residential rooftop solar uptake has been driven by rising electricity prices. The average retail electricity price per unit rose from THB 3.61 in 2021 to THB 4.18 in 2024, making the ability to generate power and avoid the cost of buying it increasingly attractive. 
Due to the Iran war impacting global energy supplies, Thailand’s Energy Regulatory Commission (ERC) will raise electricity prices to 3.95 THB per unit between May and August 2026, up 2% from 3.88 THB per unit between January and April. The ERC said rates could rise above 4 THB per unit for the September to December 2026 period if the war continues. The increased power prices are a result of rising LNG prices from the Strait of Hormuz’s closure, according to the ERC.
At the same time, the cost of installing solar has been falling. Between 2010 and 2024, installation costs for solar PV fell 87% globally. In Thailand, solar is the cheapest source of electricity generation with rooftop solar achieving ‘grid parity’ in 2024, meaning the cost of producing electricity from rooftop solar is now similar to the cost of buying electricity from the grid.
Rooftop solar in Thailand has also been supported by financing and government policies, including loans for residential users and small businesses.
In March 2026, the Thai cabinet officially implemented a personal income tax deduction for on-grid residential rooftop installations, as published in the Royal Gazette of Thailand.3This incentive is available for systems up to 10 kW peak (KWp) on-grid solar installed between 2025 and 2028, and requires taxpayers to be the registered owner of the electricity meter (Residential Type 1) and provide full e-Tax invoices from VAT-registered suppliers. This deduction reduces the amount of income subject to tax for solar users by up to THB 200,000, depending on installation cost. Kasikorn Research Center calculated that the new tax deduction means that installing solar panels could “reduce electricity bills by approximately 50% (1,500 – 6,000 baht) and reduce taxes by 2,500 – 96,000 baht.” The study estimates the payback period to be between 2 and 6 years.
The most comprehensive government support has been through a long-standing policy framework for rooftop solar. Thailand introduced a rooftop PV program in 2013, which included a feed-in tariff scheme for residential and commercial renewable energy installations to sell power into the national grid under long-term purchase agreements.
In 2019, a new household solar scheme was introduced to incentivise homeowners to install rooftop solar. Under a mechanism called ‘net billing’, residential rooftop solar users could sell back any extra electricity generated to the grid, up to a 90 MW national cap.
Net billing is a mechanism that compensates household solar users for any excess solar power they produce: 
Net billing – as well as similar policies such as net metering – is an additional way for households to save money with solar power. If payback rates are high enough, such schemes incentivise users to install solar PV, thereby helping integrate renewables into the grid and decarbonise the country’s power system.
However, a net billing policy that does not adequately pay for excess power isnot work an effective incentive. Initially, Thailand’s scheme only paid THB 1.68 per kWh for excess power between 2019 and 2021, compared to an average electricity price of 3.64 THB per kWh. As a result, only a limited number of users applied for rooftop solar. The net billing rate increased to THB 2.2 per kWh from 2021 to 2024, although the average retail rate remained higher at THB 4.18 per kWh.
Although rooftop solar adoption has accelerated in recent years, Thailand’s supportive policies have reached a critical cap. The household solar scheme aimed to buy a total of 90 MW of electricity from residential rooftop solar across the country between 2021 and 2030. It was announced that the quota was reached in 2024, meaning households producing excess solar can no longer benefit from the program. 
Households with solar panels already save on their energy bills compared to most power consumers and are less affected by expensive and fluctuating power bills, but net billing provides an additional income stream that reduces the payback period for new installations. 
90 MW is equivalent to just 0.16% of Thailand’s 2024 installed capacity across all generation technologies, indicating that the cap is primarily a policy constraint rather than a technical constraint on the grid.4Cumulative installed power generation capacity in Thailand was 55,831.76 MW as of 31 December 2024, according to the Energy Regulatory Commission (ERC). 90 MW accounts for 0.16%.
When net billing was in place, households with rooftop solar were paid less than the retail rate for their power. Between 2019 and 2021, Thailand agreed to pay rooftop solar users THB 1.68 per kWh for their excess electricity under a ten-year contract. Starting in 2021, the country paid a higher rate of TBH 2.2. However, both rates are much lower than the average electricity price of THB 3.61 to THB 4.69 per kWh for 2019 to 2024. The low rates initially failed to attract consumer interest, with most savings coming from household solar coming from self-consumption rather than selling excess power. 
Administrative procedures and installation permits are also time-consuming and complicated, preventing new users from quickly benefiting from rooftop solar. This, combined with confusion caused by the lack of policy continuity, may deter interested households from investing.
We calculated the amount of money households with rooftop solar could save if the 90 MW cap was raised and net billing was restarted.5For full methodology and sources, see Annex.
According to our analysis, a solar household consuming 84% of the power generated by solar panels would have avoided buying THB 7580 worth of grid power at 2024 electricity rates, compared to the average annual household electricity bill of THB 10,860.6Aksornchan Chaianong et al., “Customer Economics of Residential PV–Battery Systems in Thailand,” Renewable Energy 146 (2020): 297–308, https://doi.org/10.1016/j.renene.2019.06.159. 84% is the self-consumption ratio of a PV-only system in Thailand. The self-consumption ratio is the ratio of total self-consumed electricity to total electricity generation from a PV system. The annual electricity bill takes the average monthly electricity bill multiplied by 12. Selling excess power at the 2024 net billing rate of THB 2.2/kWh would have resulted in an additional income of THB 760.  
Combining money saved through self-generation with net billing income, Thai households with solar panels would have been THB 8340 better off than the average non-solar household, a saving of nearly 77%.
Our interactive calculator can be used to estimate how much an average Thai household with rooftop solar could have saved in 2024 if the 90MW cap had been lifted, compared to households without solar.
Thailand has high solar potential due to its high levels of solar irradiation, especially in the central plains and northeast plateau. Exact estimates vary widely, potentially due to the varying levels of sunlight across the country, but a study using Geographic Information System (GIS) data found that the country has more than 300 GW of solar potential. The National Laboratory of the Rockies7Formerly the National Renewable Energy Laboratory (NREL). estimates that Thailand has 10,538 GW of generation potential, the highest in ASEAN. 
Despite this, solar accounted for just 6% of the country’s installed power capacity in 2024.8Taken from Ember’s Electricity Data Explorer (accessed 20/3/2026). Thailand’s cumulative installed solar capacity stood at 9.9 GW in 2024, according to the Energy Regulatory Commission (ERC), meaning the country has only tapped into around 3% of its solar potential.9Zero Carbon Analytics analysis. 9.9 GW includes the installed capacity and contracted capacity for solar in 2024. For this figure, we divided Thailand’s cumulative installed solar capacity by 300 GW, one estimate of its solar potential. Less than 3% of Thailand’s total electricity generation came from distributed energy, including rooftop solar, in 2024.
The technical potential for rooftop solar in Thailand is high. A study published in the journal Sustainability found that 34 GW of additional rooftop solar could be installed. This amount could help Thailand reach – or even surpass – its 2037 renewable energy target of 29.4 GW.10The 2037 renewable capacity target for 2037 was 29.4GW under the draft Alternative Energy Development Plan (2018-2037).
Thailand’s proposed new Power Development Plan (PDP) presents the opportunity for policymakers to update policy to incentivise rooftop solar. Changes included in the PDP will be foundational in defining the future of rooftop solar PV, as it will forecast electricity demand, determine the generation mix and set the timing and volume of new generation capacity to be added. 
The government is reportedly considering raising the cap to 400 MW as part of the PDP. Raising or removing the 90MW cap would be a simple first step to spur rooftop solar uptake – with it surpassed, prospective customers face uncertainty about whether they can participate, and installation costs look like a bigger hurdle. The government could also consider raising the net billing rate, further increasing the incentive.
The government would also benefit from lifting the net billing cap, which would help the country meet its emissions-reduction goals. Research shows that policies that allow consumers to sell power to the grid, when paired with a compelling buyback rate, lead to more rooftop PV installations. More solar generation would help Thailand reach its target of 51% renewable electricity generation by 2037 and its updated Nationally Determined Contribution (NDC) commitment to reduce emissions by 47% by 2035, compared to 2019 levels.
We thank Dr Chalie Charoenlarpnopparut for his insightful comments on earlier drafts of this briefing.
We calculated the average savings for a Thai household with rooftop solar compared to a household without rooftop solar, if net billing were reestablished at the 2024 rate of THB 2.2/kWh
Our scenario considers a household with a small, residential-size 1.5 kW solar system comprising 3-5 panels, depending on the panel wattage, in line with Global Solar Atlas’ assumption that 1 kW is a small residential PV system. The load factor for residential panels is also taken from Global Solar Atlas, using an average from nine key regions in Thailand for a 1 kW residential system. 
We assume the household consumes 84% of the power generated by solar panels, the residential solar self-consumption ratio for a PV system without batteries from Chaianong et al. (2020)
At the 2024 electricity unit price of 4.18 THB/kWh, the home would have avoided buying THB 7580 worth of power from the grid over the course of a year. Selling excess solar generation back to the grid at the 2022-2024 net billing rate of THB 2.2/kWh would have resulted in an income of THB 760. 
The average annual electricity bill per household in 2024 was THB 10,860. This was calculated using the average monthly household electricity bill from Thailand’s National Statistics Office Ministry of Digital Economy and Society, multiplied by 12. 
Therefore, a Thai household with a small residential-sized solar array would have been THB 8430 better off in this simulation than a household without solar if net billing had been in place, saving nearly 77% compared to those without.
A payback period for installing solar is not accounted for in our simulation, as we focus on one production year, not the installation year. A 1-3 kW solar system is estimated to cost between THB 60,000 to 150,000, which means some consumers would be eligible for up to THB 200,000 under the tax reduction scheme. Installation costs are also expected to decline.

Amy Kong
Amy is the team’s oil and gas researcher, specialising in Asia’s energy transition and financing the energy transition.
Amy Kong
Amy is the team’s oil and gas researcher, specialising in Asia’s energy transition and financing the energy transition.
Yusun Chin
Yu Sun is the team’s senior researcher focusing on fossil fuel financing and technologies in East and Southeast Asia.
Yusun Chin
Yu Sun is the team’s senior researcher focusing on fossil fuel financing and technologies in East and Southeast Asia.
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A 39-foot drone boat wrapped in solar panels from bow to stern carries a turret under an armored hatch in its nose, gathers 24 kilowatt-hours a day against the 2.5 it spends holding position, and the yard that built the hull makes wake boats – Autonocion.com

By: Chema Bonilla Díaz
Published: Sep 2, at 3:30pm ET
An armed patrol boat has a problem nobody puts in the brochure: staying still costs almost as much fuel as going somewhere. Engines idle, generators turn, and the tank drains while the boat does nothing but watch. That is the bill a Michigan company called Voltaic Marine is trying to delete, and the way it went about proving the point was to bolt a weapons turret into the nose of a boat that runs on sunlight.
Moog announced on August 24 that it had demonstrated its Reconfigurable Integrated-weapons Platform, or RIwP, aboard Voltaic Marine’s AEU39 uncrewed surface vessel during the U.S. Navy’s Coastal Trident Demo. The turret sat inside the boat’s bow, under a hinged armored hatch that lifts when the system needs to engage and lies flush the rest of the time.
The AEU39 is 39 feet long, aluminum, and wrapped in solar panels along the full length of the hull.
Voltaic says the shell generates 5 to 6 kilowatts and feeds a 300 kilowatt-hour battery. Below roughly two knots, the company’s own specification sheet puts the daily arithmetic at 24 kilowatt-hours harvested against a 2.5 kilowatt-hour station-keeping draw. The boat gathers more than nine times what it spends sitting there. Fuel burn on station, per the same sheet: zero gallons a day.
Every other number on the AEU39 exists to serve that one. Voltaic lists a 22-knot top speed, which works out to about 25 mph, and a range of more than 5,000 nautical miles, or roughly 5,750 statute miles. Two modular bays carry a combined 4,000 pounds. A gyro-stabilized deck is rated through Sea State 4, and power for the payload runs through an 800-volt to 12-volt conversion system.
None of that is unusual for a workboat hull. What changes when you remove the fuel bill is how long the thing can loiter, and loitering is what a defensive picket does for a living. Voltaic describes the combination as capable of keeping a turret “on watch for weeks at a time,” as reported by The Defence Blog.
Solar-powered uncrewed boats are not new. Australia ordered 40 more Bluebottles that harvest sun, wind and wave and stay out for six months, and the U.S. Army has been running small solar drone boats as escorts in the Philippines. Those boats carry sensors. This one carried a gun mount.
RIwP is not a naval system by birth. Moog won the competition in 2018 to supply the turret as the centerpiece of the Army’s Maneuver Short-Range Air Defense program, now named SGT Stout, riding on the Stryker A1. The initial ground configuration packs a Northrop Grumman XM914 30 mm Bushmaster, four Stinger missiles in a Raytheon launcher, two Longbow Hellfires and an M240 machine gun.
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The version that went to sea is far smaller. Moog says it keeps full commonality with the standard RIwP while running roughly one-third of the weight, and that the configuration can integrate a 30 mm cannon and multiple missile effectors. Moog described its Lightweight RIwP in those same terms when it unveiled that turret at AUSA in October 2025 for light tactical vehicles like the Infantry Squad Vehicle.
The commonality claim is the interesting part for anyone who has to pay for this stuff. Moog puts subcomponent commonality across the RIwP family at 85%, which means shared spares, shared software and shared training between a turret on a Stryker and a turret in a boat’s nose.
Jason Weiss, general manager of Moog’s Land and Sea business unit, framed the collaboration as taking what worked for RIwP on land and moving it to the water.
Moog’s statement says the demonstration proved the turret’s detection and tracking capabilities aboard the AEU39. Detection and tracking. The company did not announce a live firing, and Military Embedded Systems reported the same scope on August 26.
The Defence Blog went further and listed what stayed unsaid: Voltaic disclosed neither the date nor the location of the trials, nor the customer or program, nor whether the turret carried live weapons, nor what performance data came out of it. So the 30 mm cannon belongs in a sentence about what this turret can mount, not what this boat was carrying.
Coastal Trident itself is worth knowing. The Port of Hueneme and the Naval Postgraduate School’s Center for Asymmetric Warfare set it up in 2007, and it now runs out of Naval Surface Warfare Center Port Hueneme Division as a series of technical demonstrations and field experiments conducted between June and September 30 each year. Companies bring hardware, the Navy watches it work, and nobody signs a purchase order on the beach.
Electric propulsion gives the AEU39 a low acoustic and thermal signature, which Voltaic sums up as holding position without announcing it. A diesel picket announces itself constantly. That matters less against a warship with a radar horizon and more against the cheap, small, numerous things that navies now spend their days worrying about.
Richard Phamdo, CEO of Voltaic Marine, made the cost argument in Moog’s announcement, saying a reconfigurable mount lets “operators match the cost of the intercept to the cost of the threat.” Shooting down a $2,000 quadcopter with a million-dollar missile is a losing trade, and the answer the industry keeps landing on is a gun with a good sensor on the same mount.
That same logic showed up on land two weeks ago, when an American firm pitched a 660-pound remote turret with a 30 mm cannon for trucks the Army already owns. At sea, BlackSea Technologies put missiles in a bow-mounted launcher on its 43-foot Comet drone boat, and Textron’s rocket-armed Tsunami went to the Caribbean. Everybody is arriving at the same intersection from a different road.
Voltaic’s contribution is the endurance half. Moog builds the turret, the Navy is shopping, and the AEU39 supplies a hull that can hold a weapon in one place for a long time without a fuel truck behind it.
Voltaic puts the AEU39 at Technology Readiness Level 7, patent pending. TRL 7 means a prototype demonstrated in an operational environment. It does not mean production, and it does not mean anybody has bought one.
The company says the first article went in the water in the summer of 2026 with hull, battery, solar shell, mast and autonomy suite fitted, and has been in trials on the Great Lakes since. Voltaic also says the boat travels by road trailer, launches off a boat ramp, ships inside a 45-foot high-cube container and fits aboard a C-17 or a C-130.
Every performance figure in this piece comes from Voltaic Marine or Moog. No third party has published independent measurements of the solar harvest, the range or the endurance, and the companies have not released the trial data.
Voltaic Marine builds wake boats for a living. The AEU39 rides on the same propulsion, energy and hull architecture the company uses across its consumer and commercial lines, which is the boring industrial reason a small Michigan builder can put a hull in the water at all.
A turret that can see is not a turret that can shoot, and Moog has not said when the AEU39 configuration fires anything. The Coastal Trident program year closes on September 30, with an open house at Port Hueneme wrapping up three months of exercises.
Moog dated its announcement August 24, 2026. Richard Phamdo’s company has one AEU39 in the water, on the Great Lakes, at TRL 7.
Agree or laugh out loud?
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North Canterbury farmland eyed for major solar project – farmersweekly.co.nz

The latest Overseas Investment Office data reveals the North Canterbury district of Scargill may be next in line for large-scale solar farm conversion. 
In August consent was granted for over 1500 hectares of farm land to be leased by Australian-owned NZ Clean Energy (NZCE) Investments to establish solar panels and a battery installation. 
While about 500ha of this covers known solar farm projects in Masterton, Dannevirke and Darfield and a battery installation at Glenbrook, the remaining 900-950ha encompasses five freehold farming properties near the tiny village of Waikari on State Highway 7.
The leasehold rights were granted under the “benefit to New Zealand” test for projects of national significance that meet government policy, in this case sustainable energy generation
Specifically, the rights include farm properties on Scargill Valley road, Waikari Valley Road, Gates Road and Megowan’s Road, totaling 952ha. The largest of the properties is a 340ha property on Scargill Valley road.
The North Canterbury project has been a low-profile play by NZCE, which registered a company, Scargill Solar and Energy Storage Ltd, in January 2025 with the NZ Companies Office. 
There is also no reference to the Scargill project on NZCE’s website, with only Masterton, Darfield and Dannevirke listed.
At about 950ha, the Scargill project footprint represents almost 10% of the 10,000ha identified for solar projects in progress. 
George Hughes, NZCE’s chief operating officer, said the project’s low profile to date was because it is further down the company’s list of priorities.
“We are continually assessing projects in our portfolio. The first thing we would do if proceeding is talk to the neighbours. We do have rights to it, but it is still years away.” 
The proximity to the national grid makes the Waikari site particularly suitable for such a project, which the OIO report notes is to be developed on sensitive land, currently used for beef, sheep and dairy farming. 
Hughes said while the grant is for almost 1000ha, this would not be the area in solar panels.
He said the area that would go into panels could be “less than half” the area granted. It may also include a battery installation.
This would still make the project the company’s largest, with the Masterton, Darfield and Dannevirke projects averaging 150ha each. 
Nationally the pipeline for large-scale solar installations remains significant, with estimates of about 10,000ha of land consented for conversion, under construction or going through fast-track consenting.
The MPI estimates a further 10,000-20,000ha of land could be destined for solar installations in future.
Bex Green, Federated Farmers North Canterbury president, said she felt the local community would be shocked and horrified to learn such a large amount of productive farmland was going to be covered in solar panels.
“I could understand small-scale solar going in, but 1000ha, or even 500ha, is a huge amount of land to be lost from productive sheep and beef farming.”
She said large-scale solar farms is quickly becoming the “new carbon forestry”.
“This is a real emerging issue and I think we are only going to hear more about the scale of these conversions as time goes by. It is happening all over the country now,”
A Beef + Lamb NZ spokesperson said the body did not have  a position on solar installations’ impact on farmland at this point.
NZCE’s investments are on behalf of the Australian Renewables Income Fund (ARIF), itself partly backed by the Australian government to the tune of AU$175 million. 
The ARIF manages about AU$2 billion in wind, hydro, solar and battery assets and the investments represent its first foray into NZ’s sustainable energy market.
Hughes confirmed none of the NZCE projects have been earmarked for the government’s fast-track process, having commenced prior to that process being established.
Almost 4000 hectares of New Zealand farmland have been leased or sold to foreign-owned solar companies over the past four years without first being offered to New Zealand interests, under exemptions granted by the Overseas Investment Office.
OIO records reveal multiple solar projects over the past four years have included largely leasehold deals with the companies, extending from the Far North to Otago. The total area acquired is 3917ha.
Normally, under overseas investment regulations when overseas interests wish to acquire farmland that is classed as sensitive under the Overseas Investment Act, it must be offered for acquisition on the open market to New Zealanders first. 
The prescriptive rules require at least 30 working days both online and in print.
The scale of the exempted projects leased to overseas interests varies between a 53ha project near Auckland, to a 460ha project this year in Taranaki, leased to Stratford Solar, a joint project between Contact and Lightsource, a global solar energy developer. The  approval of 1536ha to NZ Clean Energy Ltd  does not appear in the latest OIO exemption updates (see accompanying article).
Acquisition of land for solar projects was particularly intense in 2023 when 1750ha was obtained for leasing. 
Solar projects dominate the OIO’s exemptions list, and the office is required to state the reasons for exempting companies from seeking local interest. 
Typically, on most of the exemptions the office states that publicising the property increases risks around alerting the foreign company’s competitors to the location of the project, increasing likelihood of those competitors acquiring it.
In the case of leasehold land it usually also notes the use is temporary, some of it will also still be used for grazing, and it is not a permanent loss of New Zealanders’ opportunity to buy the land given the leasehold arrangement. 
Farmland leases for solar projects  typically run for a lengthy 35 years.
The creep of unadvertised, exempted solar leases across farmland has rung alarm bells with Federated Farmers.
Feds energy spokesperson Greg Anderson said the stealthy nature of the solar conversions will be of huge concern to a lot of farmers and Federated Farmers is watching closely.
“There are a lot of similarities with the carbon farming situation, where there could be a lot of unintended consequences further down the line. When there’s no public consultation, you don’t know these solar farms are going in until they’re already up – but by then it’s too late.”
He called for greater transparency around the projects to ensure communities are aware of what is going on, and to give greater opportunity for scrutiny.
“Land Information NZ’s own guidance says a solar farm may stop being a farm once it’s built. That means a later sale to an overseas buyer may not face the farmland rules that a normal farm sale would.”
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Record solar, wind surge drives 3.3% drop in India’s fossil generation in 2025 – pv magazine Global

From pv magazine India
India’s renewable power generation from solar, wind, hydro and bioenergy rose by a record 98 TWh (+24%) in 2025, driven by strong growth in solar and wind, according to Ember. The increase was twice the country’s electricity demand growth of 49 TWh, which was relatively low due to milder temperatures and slower industrial activity. As a result, India’s fossil power generation fell by 3.3%.
Solar and wind both set new records for year-on-year increases in 2025, rising by 53 TWh (+37%) and 22 TWh (+28%), respectively. Distributed solar, including rooftop PV installations, added an estimated 22 TWh in 2025.
India’s share of wind and solar in electricity generation (14%) remains below the global average (17%). However, the share increased by 3 percentage points in 2025, highlighting the growing role of clean energy in the country’s power system.
India at the forefront of solar growth
India recorded the world’s third-largest increase in solar generation in 2025, adding 53 TWh. The rise was driven by a record 38 GWac increase in capacity, surpassing the United States (35 GWac) for the first time. Solar growth alone was sufficient to meet the increase in India’s electricity demand in 2025.

Solar also overtook hydro to become India’s largest source of clean electricity, with its share reaching 9.4% in 2025. Solar output has doubled since 2022, rising from 96 TWh to 196 TWh in 2025, reinforcing India’s position as the world’s third-largest solar generator, with nearly double the generation of fourth-placed Japan (101 TWh).
“Solar power is the dominant driver of change in India’s power system,” said Aditya Lolla, managing director at Ember. “Along with battery storage, solar is enabling the rapid scale-up of round-the-clock clean power, strengthening India’s energy security and reducing exposure to global shocks.”
Ember’s seventh annual Global Electricity Review provides a comprehensive overview of the global power system in 2025, based on country-level data. It is published alongside an open dataset covering 91 countries, representing 93% of global electricity demand, as well as historical data for 215 countries.
“India’s power system is entering a new phase of its transition, driven by record additions in solar and wind capacity in 2025,” said Duttatreya Das, energy analyst for Asia at Ember. “Going forward, investments in grid infrastructure and flexibility resources will be critical. India is on the right track, with auction designs already evolving to include greater energy storage components. As these projects scale, they will enable more efficient use of low-cost clean power across the system.”
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Great news! Obviously, the transition needs to continue. Adding storage is the obvious next step to dealing with increased renewables, but there is another one after that. Structuring the markets to deal with, for example, low prices when there is a lot of generation, and relatively low demand. For example, ecouraging load shifting, like vehicle charging during solar hours, and encouraging flexible demand, that can utilize excess production. Spain is seeing situations like this.
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Powering a safer solar future – Australian Institute for Bioengineering and Nanotechnology (AIBN)

            

            
After working to set a world record for lead-free solar cell efficiency, Dr Peng Chen is now leading a research team at AIBN focused on creating safer and more efficient materials for solar energy.
His core expertise is designing new nanomaterials which he is harnessing to explore beyond solar cells to create devices such as wearable electronics, sensors and future medical devices.
As a group leader, Dr Chen embraces the responsibility to contribute to AIBN and foster multidisciplinary collaborations and maintain research excellence.
“AIBN has many excellent research groups and we have many opportunities to collaborate.”
“Now with each idea, I am thinking, how can this contribute to research excellence at AIBN?”
“My team can share our expertise and knowledge in semiconductor nanomaterials for different applications and collaborate with other groups to elevate our research.”
“My goal is to create safer, more sustainable alternatives for solar cells.”
A significant part of Dr Chen’s research addresses the toxicity problem in next-generation low-cost thin-film solar cells.
Traditional high-performance perovskite solar cells often rely on lead-containing compounds as the main light-absorbing component because it is very effective at converting sunlight into electricity.
Lead is highly toxic, causing serious health problems, particularly in children and can pollute the environment if not disposed of properly.
Dr Chen advocates for completely lead-free materials to avoid environmental and health risks.
“I want to remove this toxicity issue, so it is not present in solar products of the future.”
To mitigate this, Dr Chen’s team developed lead-free alternatives by substituting lead with tin, a safer element from the same periodic group.
Tin is a suitable eco-friendly alternative does not compromise efficiency and degrades into a harmless, stable form.
In 2025, Dr Chen was part of a team setting a new world record for the efficiency of lead-free perovskite solar cells, achieving a certified efficiency of 16.65 per cent.
While eliminating lead is a key focus, Dr Chen sees even broader opportunities for the materials his team is developing.
He is exploring the application of these tin-based materials for indoor power sources, converting indoor light (for example, LED lighting) directly into electricity sufficient to run devices around the home without the need for batteries.
The solar cells are thin and flexible in contrast to traditional silicon solar cells, which are rigid and brittle.
Their eco-friendly nature ensures no toxic risk when used indoors.
And with safe attachment to the skin, this battery-free, self-powered concept could transform wearable health monitoring technology.
Dr Chen’s vision includes developing wearable, flexible medical devices for health monitoring, as well as potential use in hospital equipment like X-ray detectors and sensors.
“Tin perovskites can also absorb and emit infrared light, which is valuable for medical devices that require communication via long-wavelength infrared light between sensors and tissues inside the body.”
Dr Chen’s ambition is to partner with industry to use his non-hazardous nanomaterials in next generation optoelectronics including solar cells, medical sensors and wearable electronics.
“During my PhD, I just wanted to enjoy the fun of science but now I want to make a real contribution.”
“As my career progressed, I started to consider how I could contribute my knowledge to make an impact.”
“My goal is to bring real products and prototypes to market, collaborating with local manufacturers and industry partners.”
Some of Dr Chen’s ideas are already taking shape – he is already a co-inventor on two patents for tin perovskites and their composites and is working with a solar cell manufacturing company in New South Wales.
Dr Chen moved to AIBN following his PhD at UQ’s School of Chemical Engineering to work on perovskites and quantum dots for thin-film solar cells.
Quantum dots are nanocrystals smaller than 20 nanometres that exhibit unique quantum properties.
As highly crystalline semiconductor materials, these quantum dots effectively harvest solar energy and generate renewable electricity, contributing to a lower carbon future.

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Dr Chen hopes to create a team culture that balances curiosity, independence and achievement.
“I always tell my team, enjoy the science…find a topic you’re interested in and feel free to explore.”
“They don’t need to publish too many papers, but they need at least one paper they can be very proud to present at an academic conference.”
Now leading his own research team, Dr Chen hopes to inspire the same curiosity that first drew him to science while helping turn promising discoveries into technologies that benefit society.

Want to learn more about this story or how you can partner with AIBN on ground-breaking research?

Contact us via email: communications@aibn.uq.edu.au
or phone: +61 414 984 324

Contact us via email: communications@aibn.uq.edu.au
or phone: +61 414 984 324

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Italy: News on Spalma Incentivi 2.0: now a voluntary option for PV system operators – roedl.com

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The new regulation applies exclusively to photovoltaic systems with an installed capacity of more than 20 kW, whose subsidies are based on fixed, non-market-dependent premiums and which were granted under the relevant ministerial decrees between 2005 and 2011. A further prerequisite is that the respective subsidy, under current law, expires on January 1, 2029.
Operators have the option to voluntarily opt for a temporary reduction of their feed-in tariffs. Two models are available:
The decision for one of these models must be declared to the responsible funding body (GSE) by May 31, 2026 (!) at the latest, although it is assumed that the deadline will be extended as implementing decrees are still missing.
For the extension period, a special tariff applies, which results from the average of the previously reduced subsidy values. This ensures that the extension is economically linked to the preceding reduction.
In addition to the temporary reduction, the decree for the first time opens up the possibility of completely exiting the existing subsidy system. Such an exit can be applied for by September 30, 2026, and will become effective on January 1, 2028.
The total volume of this action is limited to an installed capacity of 10 GW.
In return, operators receive financial compensation. This corresponds to 90% of the discounted value of the remaining subsidy payments until the regular end of the subsidy period.
Two central factors are used to calculate this compensation: Firstly, the expected electricity production is determined based on the average of the actual production of the last five years. Secondly, future cash flows are discounted using a discount rate set by the GSE, which is based on the equity costs of photovoltaic investments.
Regarding the selection of systems, the decree provides for a tiered system: system operators who previously chose one of the reduction models will be given priority. For all other systems, a competitive selection process will be carried out, which should be completed by June 30, 2027, at the latest.
In this process, operators submit bids in the form of percentage discounts on a system-specific reference value. This reference value also corresponds to 90% of the discounted residual value of the subsidy. The contracts are awarded to those offers that are expected to provide the greatest benefit to the energy system.
Should demand exceed the planned volume of 10 GW, the selection process will also be applied to the originally prioritized systems.
The compensation is not paid as a lump sum, but in equal installments over a period of ten years. These installments are interest-bearing, with the interest rate set by the GSE and not exceeding a maximum of 6%.
The use of the exit option is tied to extensive investment obligations. Operators must completely renew their systems (so-called repowering) between 2028 and 2030.
The target of these actions is a significant increase in electricity production. In principle, production is expected to at least double. Alternatively, depending on the system type, a minimum increase of 40% is also sufficient.
For ground-mounted systems, especially on agricultural land, as well as for other systems, these minimum increases are explicitly specified.
In addition, there are further requirements: only photovoltaic modules listed in a national register and meeting certain technical and territorial criteria (keyword: EU) may be used.
After repowering, the systems can generally participate in new support mechanisms. However, this support is limited to the additionally created capacity. The electricity production beyond that must be marketed, for example, through long-term Power Purchase Agreements (PPAs) or comparable instruments, provided this is compatible with European state aid law.
Furthermore, it is clarified that fully renewed systems on industrial sites remain permissible under licensing law, regardless of their future output, provided they continue to operate within an industrial area.
In parallel, the decree provides for a series of further actions to support its implementation.
Thus, within 90 days of the decree’s entry into force, the competent ministry will issue an implementing decree that will regulate, in particular, the details of the auction procedure, the contractual design of the obligations, and possible sanctions for non-compliance.
Spalma Incentivi 2.0 represents a comprehensive approach to reducing the historically grown subsidy burden in the Italian electricity system without coercion.
For system operators, this opens up a scope for decision-making between a temporary reduction in revenue, a state-compensated exit from subsidies, and subsequent integration into the market. The repowering obligation creates incentives for new investments.
Which option is economically sensible largely depends on the individual characteristics of the respective system. From a legal perspective, for existing projects, it must be examined whether the project rights permit continued operation, i.e., whether the operating permit remains valid beyond the subsidy period and whether corresponding land rights exist. The decree contains an explicit regulation for the permissibility of continued operation only for systems in industrial areas; however, the majority of old systems are located on agricultural land. When weighing the options, it must also be considered that the mechanism is complex overall, key economic values still need to be determined, and regulatory details remain open.
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India’s 233 GW solar module manufacturing capacity faces demand and upstream integration challenges – Down To Earth

India’s 233 GW solar module manufacturing capacity faces demand and upstream integration challenges  Down To Earth
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Operators in Fort Bend County stood 3 solar farms up to 52 degrees before the hail arrived, and the only glass that broke was on the 40 panels a failed motor had left lying flat – EcoPortal.net

The Pulse
The storms arrived overnight, and they arrived three times.
By dawn the fields were flattened, the grass was shredded and the ground was white with stones.
Between them stood rank after rank of solar modules, tipped up almost on edge, facing nothing in particular.
They had been standing that way since the evening.
Almost every one of them came through it.
The exceptions were on one row.
A hailstone falling on a flat panel hits it square. All of the impact energy goes straight into the surface, and solar glass is only certified against a fairly modest strike.
Tip the same panel steeply and the geometry changes before the stone arrives.
The stone now hits at a shallow angle, only part of its energy goes into the glass, and the rest carries it sideways across the surface and off the edge.
That is the whole idea. Not a stronger panel, just a worse target.
The second effect is area. A panel standing near vertical presents a fraction of its surface to something falling out of the sky, so most of the stones that would have hit it now miss it entirely.
Steepness also sheds water and slush instead of letting it pool, which keeps the accumulated weight off the frame.
Trackers exist to follow the sun, and their motors can just as easily point the rows somewhere useless.
A stow protocol is a subscription to a weather feed, a trigger radius drawn around the site, and an instruction that overrides normal tracking when a hail threat crosses that line.
Rows drive to a steep fixed angle and hold there until the cell has passed.
The cost is obvious. A farm in stow produces almost nothing, so the operator is deliberately shutting down hours before anything happens.
That is a bet against a forecast, and the false alarms are pure lost revenue.
It is also entirely a software and maintenance question. The hardware to do it is already installed on every tracking site in the country.
Three storms crossed Fort Bend County, Texas, inside twelve hours on the 15th and 16th of March in 2024.
Hail reached three to four inches at the eastern end of that path and one and a half to three inches across the sites to the west.
All three exceeded what engineers classify as a 500 year hail event.
Two of the farms went to a 52 degree stow and reported no hail damage at all.
The third, a 270 megawatt site, went to the same angle and came through the same way, apart from roughly 40 modules that never got there because a tracker motor had failed on their row.
Those 40 stayed flat. Those 40 broke.
This is three solar farms and one weather system, not an experiment.
The engineering firm that published it inspects and certifies solar projects, so it has a professional interest in the finding, which does not make the finding wrong but is worth stating.
Stow angle is also not the only variable. Module thickness, frame design, glass thickness and the tracker’s own stiffness all sit inside the same result and cannot be separated from it here.
And a stow only helps with enough lead time. A fast forming cell that appears inside the trigger radius leaves no room to drive the rows anywhere.
The most persuasive detail is the accidental control group, because the failed motor produced exactly the comparison a designed test would have asked for.
The president of the firm put the conclusion narrowly, that operationalized stow protocols are effective at preventing module glass breakage during a severe hail event, which is a smaller claim than most of the coverage made.
Hail is a small share of solar insurance claims and more than half of the total money paid out.
That imbalance is what drove insurers to write hail sublimits into policies, commonly in the range of 15 to 20 million dollars, which leaves an owner carrying the rest of a bad day.
A documented stow protocol, with maintained motors and a logged trigger, moves a site from that exposure toward almost none of it.
Which turns tracker motor maintenance from a housekeeping task into an insurance line item, because the row that cannot move is the row that pays.
The counterexample sat a few miles east. A neighboring plant took the largest stones in the same twelve hours and lost modules in the thousands, and the public record of what it had done that night is thin.
Glass is the part of a solar farm that was engineered hardest, and it still breaks when it is pointed wrong.
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Many Australians can get three free hours of power from today. Here’s how – The Guardian

Residents of Queensland, New South Wales and South Australia with a smart meter can access the Solar Sharer offer from 1 July
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Households in three states can choose an electricity plan with three free hours of power a day, as Solar Sharer switches on from Wednesday.
Nearly half of Australians surveyed have expressed interest in the government-regulated scheme, but experts say it may not work for everyone.
Here’s what you need to know.
Solar Sharer is a regulated energy offer with free electricity in the middle of the day, which energy companies will offer in Queensland, New South Wales and South Australia from 1 July. 
Households in Victoria will have access to a similar scheme, called the Midday Power Saver, from 1 October.
The energy minister, Chris Bowen, says more households will benefit from Australia’s cheap and plentiful solar energy via the scheme – regardless of whether they have solar panels on their roofs.
“When the sun is shining at its brightest and power is negative or at its cheapest, then consumers, whether they have solar panels or not, whether they be renters or not, should be able to benefit from that.”
The free power period is from 11am to 2pm in NSW, Queensland and Victoria, and from noon to 3pm in South Australia.
It is not unlimited. A daily cap of 24kWh applies; the Australian Energy Regulator says that is equivalent to a day’s usage for a five-person household. Any use above that amount will be charged.
Renew, a not-for-profit that advocates sustainable living, says that is a generous allowance – most households use somewhere between 10 and 20kWh on a typical day.
Customers will need a smart meter to opt in, however. Homes without a smart meter can usually request one from their energy retailer and most will install them for free.
Retailers with fewer than 1,000 customers are not required to offer the deal. It is also not available to customers in other states and territories or those on embedded networks (private electricity systems that operate in some apartment blocks, retirement villages or shopping centres).
The Australian Energy Council, which represents energy companies, says Solar Sharer is most useful to households with batteries, electric vehicles or large, easily shiftable loads.
It may also work well for people who work from home.
For households that take up the Solar Sharer offer, the key will be to shift as much electricity use as possible into the free-power window.
Renew advises filling up your home battery or topping up your electric car – if you have one – and programming your hot water system to run during that time
“Run your heating or cooling during those hours to pre-heat or pre-cool your home. This way you’ll use far less power later in the day,” the organisation says.
“If your dishwasher, dryer, or washing machine has a timer, set it to run during the free period. The same goes for EV charging, though to get a meaningful charge in three hours, you’ll need a fast charger rather than a standard trickle charger.”
Solar Sharer is not necessarily the best or cheapest energy plan available. The scheme is part of the default market offer framework, which means it acts more like a benchmark price rather than a competitive plan. Plus, retailers may charge higher rates for electricity outside the free power window to recoup their costs.
Energy Consumers Australia (ECA) is supportive of the scheme, but says governments and retailers must clearly explain the trade-offs to customers – between free energy in the middle of the day and higher prices at other times.
“We don’t want to have people signing up to these plans assuming it will decrease their bills, when in fact it could do the opposite,” the consumer advocacy group says.
Tim Forcey, an independent energy consultant, says simply running the dishwasher, the washing machine or dryer during the day may not be enough to benefit.
“People need to assess if they can get their money’s worth during the free period,” he says, noting they may end up paying more at other times of the day through higher charges or lower solar feed-in tariffs.
There may be broader cost savings to the electricity grid if enough customers take up the offer and shift enough of their energy use into the middle of the day and away from the peaks, the regulator says.
“Shifting more demand to the middle of the day would lower the cost of the electricity system for all consumers as we don’t need to build as much generation or poles and wires to meet the evening peak.”
Many retailers already offer plans with free power periods.
GloBird Energy, for example, has plans that include free or low-price power periods tailored for households with home batteries, customers with electric vehicles, and a “Four4Free” offer that includes four hours of free electricity during the day.
Other examples include AGL’s Three for Free plan, which the company launched in South Australia in 2025.
“The common thread across all of these products is giving customers more control and more ways to lower their bills by shifting energy use and export to the times that deliver the most value to them,” an AGL spokesperson says.
The regulator says consumers can change their energy plan at any time and encourages people to shop around. “Customers should also check their bills to see if they are on their retailer’s best plan. Retailers are required to tell their customers at least once every 100 days if they can offer them a better plan,” an AER spokesperson says.
Both the federal and Victorian governments provide comparison sites to help people compare plans and find the cheapest deal.
A lot of retailers update their plans after 1 July, which makes it a good time to look at what is on offer.

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Emmitt Smith accused of fraud in lawsuit over $2.5M Texas solar deal – NBC 5 Dallas-Fort Worth

Former Dallas Cowboys star Emmitt Smith and several of his business partners are accused in a new civil lawsuit of misleading a tribal economic development entity into providing $2.5 million for a Texas solar project, then using the money for a different purpose.
A lawsuit was filed Aug. 31 by tribally owned economic development organization Kituwah LLC. Kituwah invests on behalf of the Eastern Band of Cherokee Indians.
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The complaint names Smith, David Mosley, their Dallas-based company 4 13 Solutions Inc., Darrel Wilson and Wilson Holdings of North America LLC as defendants. It alleges Smith and Mosley induced Kituwah to participate in a joint venture involving a proposed solar farm known as Project Exodus by making false or misleading representations about the project’s progress, financing, potential investors and expected returns.
The allegations have not been proven in court. NBC 5 has reached out to those named in the suit for comment and has not received a response.
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According to the lawsuit, Smith and Mosley introduced Kituwah to a proposed Texas solar development known as Project Exodus in 2023. A project summary described the solar farm as 4 13 Solutions’ “flagship project,” expected to begin operating by the end of 2024 and generate nearly $13.8 million in first-year net income.
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Kituwah alleges it agreed to partner with 4 13 Solutions and Wilson Holdings through a new company, Jabez 4 10 LLC, to acquire interests in the project. In September 2023, Kituwah loaned Jabez $2.5 million, with the understanding that the money would help acquire GCI’s rights and ownership interests in the development.
After the money was transferred, 4 13 Solutions told Kituwah that the full $2.5 million had been paid to GCI, according to the complaint. Kituwah alleges it never received documentation confirming that payment or the promised transfer of project interests.
In the lawsuit, Kituwah says it later discovered the money had instead been paid to Wilson Holdings, which had previously provided funding to 4 13 Solutions.
An agreement did provide for Wilson Holdings to receive $2.5 million, but only after Jabez obtained permanent financing for Project Exodus. Kituwah alleges that financing was never secured. The complaint says Wilson later told Kituwah’s attorneys he did not believe permanent financing had been received and did not know what triggered the payment to his company.
The lawsuit accuses Smith individually of fraudulent inducement and breach of fiduciary duty. It points to emails Smith allegedly sent during negotiations, including one saying a bridge loan from Kituwah was “crucial to our success and our brand.”
The $2.5 million loan was due by Feb. 1, 2024. Kituwah alleges none of the principal has been repaid and says it repeatedly sought payment before filing suit.
Kituwah is seeking at least $2.5 million in damages, plus interest, costs and other amounts that could be determined at trial.

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China's Solar Fleet Just Overtook Coal — What It Means For India's Own Transition – Saur Energy

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China’s National Energy Administration confirmed this week that the country’s installed solar capacity has overtaken coal-fired capacity for the first time since China’s first thermal plant began operating in 1882. Cumulative photovoltaic capacity reached 1,286 gigawatts (GW) at the end of July, edging past coal’s 1,285 GW and taking a 31.5% share of the country’s total installed power generation capacity. Solar generation over the first seven months of 2026 rose 15.5% year-on-year to 802.4 billion kilowatt-hours — roughly one in every eight units of electricity China produced.
Capacity is not generation
The generation gap remains significant, considering the capacity factor differences. Solar’s average capacity factor in China is around 14%, against roughly 50% for coal, so coal-fired plants still generate about three-and-a-half times more actual electricity than solar despite the smaller installed base. Coal’s share of China’s generation mix did slip below 50% for the first time on record in the first half of 2026 (49.7%), with renewables supplying 41.2% — but coal remains the workhorse of the grid even as it stops being the biggest line item on the capacity ledger.
The China Electricity Council expects wind and solar together to account for close to half of the country’s total installed capacity by the end of 2026, with coal’s share falling to roughly a third. Total generating capacity across all sources is forecast to grow by more than 400 GW this year, broadly tracking rising electricity demand . That means China is still building coal alongside renewables rather than retiring it outright. The big difference is that energy demand growth is outpaced by clean energy growth now, allowing clean energy to expand its share of the market.
 
Scale that dwarfs the field
China’s 1,286 GW of solar alone exceeds the combined installed capacity of the entire European Union and is more than twelve times that of the United States. The country continues to manufacture roughly eight in every ten photovoltaic modules sold worldwide, and investment in its solar industry over the next five years is projected to exceed ¥2 trillion (about $297.6 billion), according to a report in Chinese state broadcaster CGTN.
What it means for India
India’s own solar build-out looks fast by any standard but is not yet in China’s league by scale. Central Electricity Authority data puts India’s installed solar capacity at 164,594.75 MW (164.59 GW) as on July 31, 2026, well short of the country’s 224,157.5 MW (224.16 GW) of installed coal-fired capacity, which remains comfortably the single largest source in India’s power mix at 40.6% of a total installed base of 551,994.76 MW (551.99 GW). Non-fossil sources including nuclear, large hydro and renewables combined  account for 300,505.63 MW (300.51 GW), or roughly 54% of that total, a capacity-mix threshold India crossed some time ago even as coal continues to dominate actual generation.
The pace of change is visible in the monthly numbers too: CEA data show India added 3,136.28 MW of renewable capacity in July 2026 alone, against zero net addition to conventional (thermal and nuclear) capacity. Wind capacity has also quietly crossed 58,136.89 MW (58.14 GW) nationally.
The more useful lesson for Indian policymakers and developers may be the capacity-versus-generation gap that China’s milestone exposes. Installed-capacity announcements make for good headlines, but they say little about how much coal India is actually burning to keep the lights on. A distinction that matters as India’s own coal-fired generation share, still comfortably the largest in the country’s mix, will take considerably longer to erode than the capacity numbers alone might imply, with coal demand expected to remain robust. As Indian manufacturers race to scale up cell and module output to compete with Chinese costs, the more consequential race- displacing coal from the generation stack, not just the capacity table is one India is still very much in the early laps of.
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Plug-in solar panel warning for landlords – Property118

Landlords could face new electrical, fire and insurance risks as plug-in solar panels begin to appear at rented homes.
Risk assessment specialist Riskstop says property owners must understand how the technology is installed and whether existing electrical systems can support it.
Plug-in photovoltaic (PV) solar panel systems have been legal to buy and use in the UK since 27 August 2026 following government changes.
Already used in parts of Europe, the smaller systems are designed to make solar power accessible to flats and properties unsuitable for conventional roof-mounted panels.
The firm’s head of strategic planning, Johnny Thomson, said: “Unlike conventional roof-mounted PV systems, plug-in systems are designed to be installed by householders and connected directly to a standard electrical socket.
“They offer a relatively simple means of generating renewable electricity and may be particularly attractive to residents in flats, apartments, rental properties and homes unsuitable for traditional roof-mounted solar installations.”
He added: “Whilst plug-in PV systems are generally smaller than conventional solar installations, they should not be considered risk-free.
“They introduce many of the same electrical, fire and structural hazards associated with traditional PV systems, together with additional risks arising from user installation, product compliance, mounting arrangements and interaction with existing electrical circuits.”
Plug-in PV systems feed electricity through an existing socket circuit rather than being hard-wired into a property’s electrical distribution system.
Riskstop says the condition and suitability of the electrical installation, product compliance and the protection built into the equipment must all be assessed.
Although smaller systems are less complex than roof-mounted installations, they are still electrical generation equipment.
Landlords may also need to check whether the relevant network operator must be notified.
Panels installed on balconies, walls, terraces and other external areas must be securely mounted against wind and bad weather.
Consent from the landlord or freeholder may be required, alongside any relevant planning permission and compliance with the insurer’s conditions.
Regular visual checks can identify damaged cables, deteriorating components, loose fixings and signs of overheating.
Riskstop says insurers and brokers will increasingly need details of what has been installed, where it has been positioned and how it is being managed.
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Middle East & Africa Solar PV News Snippets: Cape Town’s 70 MW Below-Eskom Power Deals & More – taiyangnews.info

The City of Cape Town in South Africa has signed two 20-year power purchase agreements (PPAs) totaling 70 MW with independent solar power producers. The agreements will supply 30 MW from JEMPEC in Atlantis and 40 MW from Make A Difference LLC in Philippi. The city said the power will cost 19% to 21% less than current Eskom rates, with price increases linked to the Consumer Price Index rather than Eskom tariff increases. The two agreements are expected to cover about R8 billion of electricity purchases over 20 years. The city said that the deals are part of a competitive procurement program targeting up to 200 MW from independent power producers (IPPs), with additional agreements expected in the coming months. 
“The deals will help reduce reliance on Eskom, provide greater price predictability through CPI-linked increases and support Cape Town’s transition to cleaner energy,” stated the City of Cape Town. 
CrossBoundary Energy’s solar PV and battery energy storage project for the Kamoa-Kakula copper mine in the Democratic Republic of the Congo (DRC) is now online. The project includes 233 MW of solar PV and a 526 MWh battery energy storage system (BESS). It is designed to provide at least 30 MW of firm baseload power to the mine under a PPA with Kamoa Copper, a joint venture between Ivanhoe Mines, Zijin Mining Group, and the DRC government. The project reached commercial operation on August 12, 2026, and will enable Kamoa-Kakula to produce low-carbon copper.  
SEPCOIII Electric Power Construction Co. Ltd., a wholly owned subsidiary of POWERCHINA, has announced the full commercial operation of the Saudi Red Sea Utility Infrastructure Project, an integrated energy and utility development in Saudi Arabia. SEPCOIII delivered the project under an EPC contract, and it is part of the country’s Vision 2030 program. The project combines solar PV generation, energy storage, power grid systems, seawater desalination, water supply, wastewater treatment, solid-waste treatment, communications, and district cooling. SEPCOIII describes it as the world’s first large-scale commercial utility facility integrating multiple complementary energy and utility systems, without specifying their individual capacities. 
Earlier in 2021, SEPCOIII had announced Huawei Digital Power as the BESS supplier for 1,300 MWh capacity to be integrated with a 400 MW solar PV system for the Red Sea Project. At the time, it called this the world’s largest energy storage project of its kind (see World’s ‘Largest’ BESS In Saudi Arabia). SEPCOIII said the project also set a Guinness World Record in 2025 for the world’s largest off-grid battery energy storage project by capacity.  
Canadian renewable energy company JCM Power has entered Mozambique with a 30 MW solar project. The Manje Solar PV Project is located in Tete Province. It won the project under Mozambique’s PROLER renewable energy tender program, which is supported by the European Commission and Agence Française de Développement (AFD). JCM Power said it will work with the Mozambican government and state utility Electricidade de Moçambique (EDM) to advance the facility. 
Lunsemfwa Hydro Power Company (LHPC) has announced the commissioning of a 27 MW solar PV plant in Zambia’s Central Province. It claims this is the country’s first solar-hydro hybrid facility. The plant operates alongside LHPC’s existing 56 MW hydropower capacity and is connected to the national grid. The solar plant is designed to generate during daylight hours, allowing water in the hydropower reservoir to be conserved and used to increase hydropower generation during evening peak demand. Construction of the solar power plant began in September 2025 and was completed ahead of schedule. The commissioning follows Globeleq’s acquisition of a 51% stake in LHPC from Norfund in March 2026. LHPC operates two hydropower plants with a combined capacity of 56 MW and is developing additional solar and hydropower projects.
CEI Africa has invested €2 million in Spark, a Netherlands-based provider of modular solar home systems and off-grid energy solutions. The funding will support Spark’s financing initiatives and expansion of services for distribution partners across sub-Saharan Africa. The investment will also support the initial rollout of Spark Catalyse and Spark Connect through which it aims to strengthen financing and connections across the off-grid energy sector. 
Niger has signed a public-private partnership agreement with Niger Electricity Power Production (NEPP) to construct a 200 MW solar PV plant with battery storage in Niamey. According to the Nigerian Press Agency, the project is valued at 126.1 billion FCFA, and will be developed under a 20-year build-operate-transfer (BOT) arrangement. Construction is expected to take 24 months, including additional studies. Electricity generated by the plant will be sold to Niger’s national utility, NIGELEC, at 35 CFA francs per kWh. The project is expected to help improve electricity availability and reduce the country’s reliance on imported power.  
TaiyangNews 2024

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SAEL wins 1 GWp of solar PV module supply orders in six months – pv-magazine-india.com

SAEL Industries Ltd today said its arm SAEL Solar P6 has received supply orders for 1 GWp of solar PV modules in the last six months.
The company said it will supply n-type TOPCon modules for the contracted projects in both domestic and international markets.
The order book includes a 585.8 MWp module supply requirement from NTPC Renewable Energy Ltd for its Chitrakoot solar PV project in Uttar Pradesh. In India, the balance orders are for utility-scale solar projects in Gujarat and other parts of Uttar Pradesh.
SAEL’s solar PV modules are enlisted under the Ministry of New and Renewable Energy’s Approved List of Models and Manufacturers (ALMM), a prerequisite for deployment in government and government-assisted solar projects.
SAEL Industries Ltd is an integrated renewable energy company with operations spanning utility-scale solar power generation, solar PV module manufacturing, and agri waste-to-energy. As of Sep. 30, 2025, it has a portfolio of 8,299 MWp (DC) of contracted and awarded solar and storage capacity, along with 3,625 MW of TOPCon module manufacturing capacity and 164.90 MW of agri waste-to-energy capacity.
SAEL is also establishing an integrated facility with 5 GW of solar cell manufacturing unit and 5 GW of solar modules manufacturing line in Greater Noida (Jewar), Uttar Pradesh. The facility is under construction.
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India’s power demand is surging, but some solar energy is going to waste – InformNNY.com

India’s power demand is surging, but some solar energy is going to waste  InformNNY.com
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Novel Study Aligns Solar Farms with Grazing Needs – Mirage News

Novel Study Aligns Solar Farms with Grazing Needs  Mirage News
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Labour Ministry moves to solar power for its buildings – The Libya Observer

The Minister of Labour and Rehabilitation directed the ministry’s Projects Department to activate a renewable energy system based on solar panels to power ministry buildings.
According to the ministry, the move aims to reduce energy consumption and improve electricity efficiency.
The directive was issued during a meeting with department and office directors, attended by the ministry’s undersecretary, to review ongoing work and discuss several files and implementation programs.
Italian energy company Eni has denied reports that it requested a 20% increase in natural gas supplies from Libya to Italy, saying the alleged letter on which the reports
Khalifa Haftar has expressed his support for the outcomes of Libya’s “4+4” small convening group, which were signed on Sunday at the headquarters of the United Nations Su
The Prime Minister of the Government of National Unity Abdul Hamid Dbeibah welcomed the signing of the Small Dialogue Committee (4+4) agreement, describing it as an impor
The Minister of Labour and Rehabilitation directed the ministry’s Projects Department to activate a renewable energy system based on solar panels to power ministry buildi
The French Embassy in Libya has welcomed the expected launch of a direct air route between Libya and France, following a suspension of direct flights for more than 10 yea
Libya’s Chief of Staff, Salah Al-Namroush, met with Germany’s Military Attaché to Libya, Lieutenant Colonel Thorsten Wiesmach, to discuss strengthening military and defen
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Active Clothing Co Commissions 1 MW Solar Power System to Boost Energy Efficiency – EquityBulls

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Cherokees in small community get solar boost – cherokeephoenix.org

Ann Dockins with nonprofit People’s Community, Inc., cuts a ribbon Aug. 26 to celebrate the installation of solar panels on the organization’s community building in Bowlin Springs, Oklahoma. She is surrounded by fellow organization members and tribal leaders including Principal Chief Chuck Hoskin Jr., Deputy Chief Bryan Warner, CN Secretary of Natural Resources Christina Justice and CN Secretary of State Shella Bowlin. 
Helen Rogers with People’s Community, Inc., helps serve food and drink Aug. 26 inside the nonprofit’s community building leased from the Cherokee Nation in Bowlin Springs, Oklahoma. 
People’s Community Center is located in Bowlin Springs, Oklahoma, 13 miles east of Vinita. 
Throughout the reservation, the Cherokee Nation supports community groups like People’s Community, Inc. 

Ann Dockins with nonprofit People’s Community, Inc., cuts a ribbon Aug. 26 to celebrate the installation of solar panels on the organization’s community building in Bowlin Springs, Oklahoma. She is surrounded by fellow organization members and tribal leaders including Principal Chief Chuck Hoskin Jr., Deputy Chief Bryan Warner, CN Secretary of Natural Resources Christina Justice and CN Secretary of State Shella Bowlin. 
BOWLIN SPRINGS, Okla. – Solar panels installed atop a Cherokee Nation community center in the small community of Bowlin Springs, Oklahoma, will not only help reduce the tribe’s carbon footprint but lower electricity costs for a nonprofit group that calls the building home.
Members of People’s Community, Inc., joined tribal leaders Aug. 26 to celebrate the successful solar panel installation.
Helen Rogers with People’s Community, Inc., helps serve food and drink Aug. 26 inside the nonprofit’s community building leased from the Cherokee Nation in Bowlin Springs, Oklahoma. 
“People should understand that community organizations operate on lean budgets,” Principal Chief Chuck Hoskin Jr. said. “They do a great deal for culture, for historic preservation in many cases. They help lift up elders or people in need in the community, as is the case among other activities here at People’s Community in Bowlin Springs. If we can lower their energy bill, they can put more resources towards all of those things that they really are organizing for.”
The solar panel project was funded through the Housing, Jobs & Sustainable Communities Act signed into law by Hoskin in 2019.
“We like to celebrate these things because they are milestones,” he said. “They are what the law intended to do – lower energy costs, lower carbon footprint, help enable the community organizations who, in almost every case, are leasing buildings that the Cherokee Nation owns. But they’re leasing it for the long haul at really a nominal rate. We’re just asking them to get things done for the Cherokee people; tap into that spirit of gadugi.”
People’s Community Center is located in Bowlin Springs, Oklahoma, 13 miles east of Vinita. 
People’s Community, Inc. joined the tribe’s Community & Cultural Outreach program in 2018. To help the nonprofit better serve the area, Cherokee Nation opened the $2 million Bowlin Springs community center in 2023 using funds from the Sustainable Communities Act. Today, the community center operates an elder nutrition program.
“The philosophy is anywhere Cherokees want to organize, work together and do something locally to make a difference, let’s get behind them with infrastructure, with a facility,” Hoskin said. “This is an amazing facility that gets used for the nutrition program among other things.”
CN Secretary of Natural Resources Christina Justice said the tribe has installed solar panels on 16 community buildings throughout the reservation.
Throughout the reservation, the Cherokee Nation supports community groups like People’s Community, Inc. 
“In doing solar installs like this one, we’re reducing our carbon footprint,” she said. “That is beneficial to the community as a whole and the Nation as a whole. But these community buildings specifically, they operate on such a minimal budget, and they do so much good for our communities that every dollar counts. Any way we can reduce their energy bill just gives them more to provide services to our citizens.”
The Cherokee Nation’s Community & Cultural Outreach department facilitates partnerships in communities throughout the 7,000-square-mile reservation.
“CCO exists solely and primarily to make sure organizations just like People’s Community have resources they need,” Deputy Secretary of State Canaan Duncan said.
Bowlin Spring was founded in 1879 by Cherokee citizens, including those of Freedmen descent. Freedmen were former slaves set free by the Cherokee Nation in 1863. According to the Oklahoma Historical Society, in 1861 there were between 8,000-10,000 slaves throughout Indian Territory alone. 
Of the Cherokee Nation’s 450,000-plus tribal citizens today, more than 15,000 are descendants of Cherokee Freedmen.
The Bowlin Springs community center is located at 428099 E. 270 Road, 10 miles north of Chelsea and 13 miles east of Vinita.
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India’s power demand is surging, but some solar energy is going to waste – KSAT

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FILE – Workers walk through a swamp to install electric transmission towers for the Adani Renewable Energy Park near Khavda, Bhuj district, near the India-Pakistan border in the western state of Gujarat, India, Sept. 21, 2023. (AP Photo/Rafiq Maqbool, File)
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Free solar panels for Delhi homes using 400 units of power – indianexpress.com

Free solar panels for Delhi homes using 400 units of power  indianexpress.com
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A film 100 nanometers thick over a Seville solar cell spikes past 100 volts every time a raindrop slides off, and the useful energy in that flash is measured in millionths of a watt – EcoPortal.net

The Pulse
A drop of water rolls down a dark square on a laboratory bench in Seville.
It does not spread and it does not soak in, because the surface will not let it, so the drop keeps moving until it runs off the bottom edge.
As it goes, a needle on an instrument jumps past a hundred volts.
That number is the one that travels, and it is also the one that means the least.
Two materials touching and then separating exchange a little charge. Rub a balloon on your hair and you have done the experiment.
Water on a fluorinated surface does the same thing. Contact leaves the surface holding charge of one sign and the water carrying the other, and while they stay in contact nothing happens.
The electricity appears in the separating. As the drop slides away the contact area shrinks, the charges are pulled apart, and current runs through the circuit underneath to balance the books, which is the whole mechanism.
Which is why the surface has to repel. A drop that wets the surface and sits there is electrically useless, and only a drop in motion is a generator, which makes the waterproofing and the harvesting the same design requirement rather than two competing ones.
A hundred volts from a raindrop reads like a headline. It is a real measurement and it is close to meaningless on its own.
Voltage says how hard. It never says how many.
Here the current runs in millionths of an amp, so the useful energy per drop lands in millionths of a watt. High pressure, almost no flow.
The number worth carrying is power density. The film on its own peaked near 26 milliwatts per square inch under falling rainwater, a respectable figure for this class of device and nothing like a roof full of panels.
The coating is a fluorinated polymer roughly 100 nanometers thick, grown directly onto the cell, and better than 90 percent transparent so the sunlight it is standing in front of still gets through. Run as a generator by itself it pushed past 100 volts a drop, with peaks reported around 110, the figure every summary of this work leads with.
Wired up as a hybrid, with the same film doing both jobs at once, the rain side dropped to about 12 volts a drop while the cell underneath went on producing its own current from light.
Durability is where it gets interesting. The film held more than 85 percent of its output after upward of 17,000 droplet impacts, and roughly 80 percent after 300 hours of continuous illumination in humid conditions.
The work was published in a materials journal at the end of last year, by a joint institute of the Spanish research council and the university in Seville, and the durability testing is the part that separates it from a demonstration.
Perovskite is the reason the idea is worth anything. This kind of solar cell is cheap to make, certified single junction records have climbed past 26 percent, and its great weakness is that moisture takes it apart.
So the cell most in need of waterproofing is also the cell that stands to gain a second income from the water.
That is the actual contribution, and it is not the voltage. One layer, two jobs, no separate harvesting deck stacked on top shading the thing it is meant to help.
Rain harvesting solar is not a new ambition either, and the same idea has been chased with other cell designs aimed at exactly the places where the sun is least reliable.
Nobody is running a house on this. The researchers point at sensors, signage, autonomous auxiliary lighting and monitoring stations in places without wiring, which is the right size for microwatts.
The unresolved problem is making it at scale. A film grown in a plasma chamber on a laboratory sample is a long way from the square footage of a roof, and that gap is an open question rather than a solved one.
Then there is the weather itself, which laboratories are bad at. Real answers come from leaving hardware outdoors for years, the way 60 perovskite modules were laid on a Tokyo Bay pier against 60 identical ones under shelter so the salt damage would read as a gap between two numbers.
Until something like that runs on this coating, it is a proof of concept. A good one, with a headline number that oversells it.
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India installs 2.7 GW of rooftop PV in Q1 – pv-magazine.com

India installed 2.7 GW of rooftop solar capacity in the first quarter (Q1) of 2026 compared to 2.2 GW in Q4 2025 and 1.2 GW in Q1 2025, according to Mercom India Research’s newly released Q1 2026 India Rooftop Solar Market Report.
Installations during the quarter were driven largely by the PM Surya Ghar program, supported by subsidy-backed systems, simplified approval processes, and increasing state-level implementation support.
The residential segment accounted for 82% of total rooftop solar installations during Q1 2026. The industrial, commercial, and government segments contributed around 11%, 7%, and 0.4% of the quarterly additions, respectively.
The quarterly installations comprised 81% under the capital expenditure (CAPEX) model and around 19% under the operational expenditure or renewable energy service company (OPEX/RESCO) model.
“The rooftop solar market maintained strong momentum in Q1 2026, with installations increasing 25% quarter-over-quarter and 125% year-over-year, driven primarily by robust residential demand under the PM Surya Ghar program,” said Raj Prabhu, CEO of Mercom Capital Group. “While consumer interest in rooftop solar remains strong, the next phase of growth will depend more on implementation and execution. Faster approvals, financing access, installation quality, DISCOM coordination, and grid readiness will increasingly determine how quickly the residential segment can scale. As rooftop solar penetration rises, improving on-ground execution and consumer experience will become critical to sustain long-term growth.”
Maharashtra, Uttar Pradesh, and Gujarat led rooftop solar capacity installations during the quarter, accounting for 17%, 16%, and 15% of installations, respectively.
India’s cumulative rooftop solar installations reached 23.5 GW at the end of March 2026. Gujarat, Maharashtra, and Uttar Pradesh continued to lead cumulative installed rooftop solar capacity, accounting for 24%, 16%, and 9% of installations, respectively.
Mercom said the average cost of rooftop solar systems remained relatively stable across most module technologies during Q1 2026, while systems using Chinese modules recorded a noticeable increase in pricing.
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Martedì, 22 Settembre 2026
11:00 – 12:00 CEST, Roma
Monday, October 26, 2026
10:30 am – 11:30 am CEST, Berlin, Paris, Madrid
Thursday, September 10, 2026
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pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand.
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Negative prices reshape Europe’s solar, storage and PPA markets – pv magazine Global

The expansion of solar capacity is outpacing the market’s ability to absorb its output. High solar production coinciding with moderate demand, wind generation and limited grid flexibility is leading to more frequent periods of oversupply.
As a result, low or negative prices are becoming more common during peak solar generation. At the same time, sharp price spikes are occurring more frequently on summer evenings, when flexible power plants, including gas-fired facilities, must ramp up quickly as solar output falls.
According to S&P Global, negative-price hours in the first half of 2026 across five major European markets, including Great Britain, were around 2% higher than the record levels recorded in the same period of 2025. In 2025 as a whole, the number of negative-price hours was more than 13 times higher than in 2022.
Significant differences remain between markets. France recorded the highest number of negative-price hours, with high nuclear output adding downward pressure on prices. In Germany, higher gas prices supported electricity prices during the summer, while Italy recorded no negative-price hours due to its greater reliance on gas-fired generation.
Nevertheless, the trend is spreading across most European markets.
Data from Platts, part of S&P Global Energy, show that wholesale price spreads available to batteries in Germany reached daily peaks of more than €650 ($753.6)/MWh and averaged nearly €200/MWh in the second quarter of 2026, exceeding levels in Spain and Great Britain.
In solar-heavy markets such as Spain, these trends are strengthening the investment case for utility-scale storage. They are also reshaping revenues for market-exposed solar projects. Around 10% to 15% of European solar capacity is currently exposed to merchant risk, while more than 61 GW is contracted under power purchase agreements (PPAs). In Germany, for example, only around 9% of installed capacity is directly exposed to the market.
According to S&P Global, the issue is not the economic competitiveness of solar technology, but the declining value of unadjusted solar output during peak generation periods. Electricity produced by solar plants increasingly risks being generated when the system needs it least and when its market value is lowest.
The observed dynamic is also reshaping the PPA market. Traditional “pay-as-produced” contracts, under which buyers purchase electricity as it is generated, were designed for markets where renewable output generally retained high value and generation-profile risk was easier to absorb.
In markets with high solar penetration, that model carries greater profile risk. Buyers receive electricity when plants generate it, regardless of whether output aligns with consumption or favorable pricing periods.
“The drop in contracting for independent solar projects shows that negative prices are becoming a structural issue in PPA design, rather than just a problem for the merchant market,” said Bruno Brunetti, head of renewable revenue streams at S&P Global Energy Horizons.
Independent solar PV accounted for more than 55% of PPA deals announced in Europe in 2025. Its share fell to around one-third in the first half of 2026, with less than 3 GW contracted. Brunetti said buyers continue to seek renewable energy but increasingly favor contracts that explicitly address delivery timing, captured prices and exposure to negative-price hours.
Combining technologies is therefore becoming increasingly important, driving a shift toward asset aggregation and more structured energy products. The focus is moving beyond purchasing or generating a specific volume of renewable electricity toward managing when that electricity is produced and delivered.
S&P Global said the market is moving toward models that match generation and demand on an hourly basis. Hourly certificates and other granular certification systems could represent the next step in corporate clean energy procurement, shifting the focus from annual renewable energy volumes to matching generation with consumption over time.

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Martedì, 22 Settembre 2026
11:00 – 12:00 CEST, Roma
Monday, October 26, 2026
10:30 am – 11:30 am CEST, Berlin, Paris, Madrid
Thursday, September 10, 2026
2:00 pm – 3:00 pm CEST, Berlin, Paris, Madrid
Tuesday, September 15, 2026
5:00 pm – 6:00 pm CEST, Berlin, Paris, Madrid
Our special edition for Intersolar South America 2026 is here!
Discover the latest insights into the Brazilian solar market – in Portuguese.
A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Saudi Arabia is accelerating its clean energy transition—join the SunRise Arabia Clean Energy Conference 2026 in Riyadh to explore how solar PV and energy storage are powering its digital economy.
pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand.
Thursday, October 7, 2026
11:00 am – 12:30 pm CEST, Berlin, Paris, Madrid

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New Texas solar protections law takes effect – Click2Houston

Jaewon Jung, Reporter
Adrian Crooks, Photojournalist
Published: 
Updated: 
Jaewon Jung, Reporter
Adrian Crooks, Photojournalist
HOUSTON – New requirements for residential solar companies and salespeople took effect Tuesday, Sept. 1, as Texas begins enforcing a law designed to give homeowners more protections when buying or leasing solar panels.
The new requirements are part of Senate Bill 1036, known as the Residential Solar Retailer Regulatory Act, which Texas lawmakers passed in 2025.
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While much of the law took effect Sept. 1, 2025, lawmakers delayed two major portions until Sept. 1, 2026: requirements that residential solar retailers and salespeople register with the state and enforcement provisions allowing regulators to penalize violations.
The law regulates the sale and lease of solar energy systems designed primarily for residential use.
People who engage in residential solar sales for compensation generally must be registered with the Texas Department of Licensing and Regulation as solar salespeople and work on behalf of a registered solar retailer.
TDLR has extended the deadline to register to November 1, 2026.
Companies also cannot employ or contract with someone to conduct residential solar sales on their behalf unless the company is registered as a solar retailer.
Solar retailer applications must identify the salespeople working on the company’s behalf and include evidence that the company meets insurance requirements established by state regulators. The Texas Department of Licensing and Regulation may also conduct criminal history checks on applicants and certain people who control solar companies.
The law gives consumers a way to verify who is trying to sell them a residential solar system.
If requested by a prospective or existing customer, a solar retailer or salesperson must provide their name and registration number.
Solar contracts must also include the names and registration numbers of both the retailer and salesperson involved in the transaction.
One of the law’s major consumer protections gives Texans five business days after signing a residential solar contract to cancel it without penalty or further obligation.
The contract must state the final calendar date on which the homeowner can cancel and provide a mailing or email address where the cancellation notice can be sent.
If the solar sale or lease involves a third-party lender affiliated with or referred by the solar retailer, the agreement must also require that lender to cancel the accompanying loan if the homeowner properly cancels the solar agreement.
The enforcement provisions that took effect Tuesday specifically prohibit several practices.
A person cannot intentionally, knowingly or recklessly make a false, misleading or deceptive oral or written statement while engaging in residential solar sales.
Solar sellers are also prohibited from falsely stating or implying that they are affiliated with a public utility or government agency.
The law also prohibits solar sales at homes with posted signs saying solicitation is prohibited unless an occupant says otherwise.
Residential solar installations covered by the law must be performed by an electrical contractor.
Solar retailers are required to provide “reasonable supervision” of salespeople authorized to sell on their behalf.
That includes making reasonable efforts to correct violations the retailer knows about — or that a reasonable person under the same circumstances would know about.
The law also makes the retailer responsible for violations committed by an authorized salesperson.
When a residential solar sale or lease includes installation at someone’s home, the agreement must state that the installation will be performed by an electrical contractor.
It must also identify the contractor and license number, or provide a list of electrical contractors from which one will be selected.
The agreement must provide that the solar retailer or electrical contractor will obtain required government permits and applicable utility approval for connecting the system to the electric grid.
The law gives state regulators several tools to enforce the new requirements.
Civil penalties can reach $2,500 for each violation, with a maximum of $50,000 for violations of a similar nature.
Penalties can be significantly higher when an older Texan is harmed. If a court finds that a person over 65 was harmed by a violation, the civil penalty can reach $10,000 per violation or $100,000 for violations of a similar nature.
The Texas Department of Licensing and Regulation can also deny or refuse to renew registrations for certain violations, and the executive director can issue warning letters or cease-and-desist orders.
The law gives regulators another potentially significant enforcement option.
After notice and a hearing, if regulators determine the law or its accompanying rules were violated, the Texas Commission of Licensing and Regulation or TDLR’s executive director may order a residential solar agreement canceled and require a refund of money paid under the agreement.
The refund cannot exceed the amount the customer paid, and receiving a refund through this process does not prevent an injured party from pursuing other damages or equitable relief in court under other applicable laws.
The timing matters.
The law says Chapter 1806 applies only to contracts entered into on or after the act’s effective date. Contracts entered into before the effective date continue to be governed by the law that was in place when they were signed.
That means the law does not automatically provide a way out of older solar contracts simply because the new registration and enforcement provisions took effect Sept. 1, 2026.
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