SECI discovers INR 5.99/kWh tariff for 4-hour peak renewable power – pv magazine India

The Solar Energy Corp. of India (SECI) has discovered a lowest tariff of INR 5.99/kWh for four-hour assured peak renewable power.
The tariff was discovered in SECI’s FDRE-IX tender for 6,000 MWh (1,500 MW × four hours) of assured peak power from interstate transmission system (ISTS)-connected renewable energy projects under the tariff-based competitive bidding process.
Waaree Energies emerged as the lowest bidder, securing 700 MW at INR 5.99/kWh. NTPC Renewable Energy Ltd (NTPC REL) secured 500 MW at INR 6/kWh, while the remaining 300 MW was allocated to ACME Solar at the same tariff of INR 6/kWh.
The latest discovery comes shortly after SECI announced a tariff of INR 5.25/kWh for renewable energy round-the-clock (RE-RTC) power.
SECI managing director Akash Tripathi said the latest tariff discovery shows that renewable energy can be green, firm, reliable and affordable, even during peak demand hours.
“These price discoveries demonstrate how rapidly the economics of renewable energy and storage are evolving and open up exciting possibilities for meeting India’s growing electricity demand with clean and dependable power at competitive tariffs,” said Tripathi.
Tripathi added that SECI remains committed to innovation in power products and procurement models that translate India’s ambitious energy transition into affordable power for DISCOMs and consumers.
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Angelina County commissioner tracked down $200K solar farm promised for road repairs – KLTV.com

ANGELINA COUNTY, Texas (KTRE) – A $200,000 promise from a solar farm company to Angelina County nearly slipped through the cracks – until a newly appointed commissioner started asking questions.
Precinct 1 Commissioner Tim Sprinkle says when he took office in July 2025, he found unfinished business waiting for him.
“When I first came into the position, I had some paperwork on my desk that I had to go through, and one of them was the Azalea Springs Solar Farm contract with the county,” Sprinkle said. “After looking at it, I realized they had some obligations that they hadn’t fulfilled yet.”
Azalea Springs Solar Park, developed by EDP Renewables North America, finished construction on its roughly 180-megawatt solar facility in the county in October 2025.
Read more on the Azalea Springs Solar Park
Sprinkle says he found two outstanding items tied to the company’s agreement with the county.
The first, Sprinkle says, was a 2.2-mile stretch of Newman Cemetery Road that needed a couple inches of aggregate rock added. Sprinkle says a few phone calls got that project moving, and it was finished quickly.
The second, according to Sprinkle, was bigger: $200,000 the company had committed to put toward repairing and replacing the North Homer Alto and South Homer Alto roads.
“It’s a significant amount of money… to help facilitate repairs and replacement of the North Homer Alto roads and the South Homer Alto roads out in that area,” Sprinkle said.
Sprinkle says the roads weren’t damaged by construction traffic. Instead, he says the payment was a preventative commitment built into the county’s original agreement with the developer.
Sprinkle says the $200,000 sat unpaid for months, likely because no one in the county was tracking the obligation after it was signed.
“My guess is nobody was here to hold them accountable,” Sprinkle said. “When you start talking about a significant amount of money like that, people like to keep it in their bank accounts as long as they can to continue drawing interest on it. So, it can be tough trying to get that amount of money out of folks.”
Sprinkle says it took roughly six to seven months of back-and-forth after he took office to finally get the payment delivered.
That process, Sprinkle says, included multiple emails and phone calls with the company, and eventually required the county attorney to draft a new agreement spelling out that once the funds were paid, the company’s obligations would be considered fulfilled.
Amy Varghese, a spokesperson for EDPR NA, said in response to questions about the payment that the $200,000 was for road upgrades “as stipulated in the road use agreement,” but did not specifically confirm it was tied to the Homer Alto roads.
The county plans to use the funds in two phases, Sprinkle says. The first phase covers roughly 0.8 miles of North Homer Alto Road, running south from Highway 7. The second phase covers about 1.8 miles of South Homer Alto Road, stretching north from FM 2021.
“We’re going to try to replace and repair that road properly,” Sprinkle said, adding that he’d like to see work start this year, though it’s more likely to begin next year.
When asked whether residents should be concerned the payment almost went uncollected, Sprinkle acknowledged the stakes.
“It’s $200,000, so it’s a significant amount of money if it did fall through the cracks,” he said. “Essentially, we would just have to deal with the roadways that are the way they are right now. So, I’m glad we were able to hold their feet to the fire, get the money in for them, because it’s going to be a benefit to those residents on those roads, for sure.”
Sprinkle says going forward, commissioners need to stay on top of agreements with developers to make sure obligations are met on time.
He says there are currently no other outstanding agreements in his precinct that require similar oversight.
“They elected me to do a job, and I take that job pretty serious,” Sprinkle said. “I want to be a benefit to anybody that I can in Angelina County, and also Precinct 1, for sure.”
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PM Surya Sarovar Yojana (PM-SSY): Floating Solar in India – INSIGHTS IAS

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Source: IE

Subject: Renewable Energy

Source: IE
Subject: Renewable Energy
Context: The Union Cabinet has approved the Pradhan Mantri Surya Sarovar Yojana (PM-SSY) with a total outlay of ₹5,070 crore to deploy 5,000 MW of Floating Solar Photovoltaic (FSPV) projects integrated with 10,000 MWh of battery energy storage systems across India’s reservoirs and inland water bodies.

Floating Solar in India
Floating Solar in India

About Floating Solar in India:
What It Is?
Key Data & Statistics on Floating Solar in India:
Key Advantages & Relevance for India:
Key Challenges Associated with Floating Solar:
Salient Features of PM Surya Sarovar Yojana (PM-SSY):
Way Ahead:
Conclusion:
The Pradhan Mantri Surya Sarovar Yojana provides a strategic framework to expand India’s solar capacity without increasing land-use pressure. By pairing floating solar panels with mandatory battery storage and water conservation benefits, the scheme offers a sustainable path toward India’s 500 GW non-fossil fuel targets. Overcoming engineering challenges through climate-resilient designs and multi-agency coordination will be essential to making floating solar a core pillar of India’s renewable energy mix.
 
Assess the role of floating solar projects in achieving India’s renewable energy targets. Explain the major implementation challenges.
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India adds 3 GW of open-access solar in Q2 – pv magazine Global

India added 3 GW of open-access solar capacity in the second quarter of 2026, marking the highest quarterly addition on record, according to Mercom India’s newly released Q2 & 1H 2026 India Solar Open Access Market Report.
In India, open-access solar allows commercial and industrial (C&I) consumers to procure electricity from off-site solar projects through the transmission and distribution network, rather than relying solely on their local distribution companies. Power is typically supplied under third-party power purchase agreements (PPAs) or captive and group-captive arrangements, with project economics determined by factors including state-level open-access regulations, grid charges, banking provisions and applicable surcharges.
The report also reveals that open-access installations rose 10% quarter on quarter, with Rajasthan accounting for 25% of capacity additions during the quarter.
Solar open-access additions reached nearly 6 GW in the first half of 2026, up 42% year on year from 4 GW in the same period of 2025.
Mercom India said installation activity during the first half of the year was influenced by regulatory deadlines and changing market conditions. Developers accelerated procurement and project commissioning ahead of the phased reduction of the interstate transmission system (ISTS) charge waiver and the implementation of sourcing requirements under the Approved List of Models and Manufacturers (ALMM) List-II.
The ALMM List-II requirements for open-access projects were subsequently deferred until the end of 2026. However, the extension came after the original deadline had passed, by which time many developers had already brought forward procurement and commissioning schedules.
“The record installations and a large pipeline demonstrate the strength of underlying demand from commercial and industrial consumers. However, rising project costs, transmission constraints, changing banking and open access regulations, and domestic sourcing requirements are putting pressure on project economics,” said Priya Sanjay, managing director at Mercom India.
“The opportunity remains significant, but growth will increasingly depend on states providing predictable regulations and developers being able to deliver projects at tariffs that continue to offer meaningful savings to consumers,” she added.
India’s cumulative installed open-access solar capacity reached 36 GW at the end of June 2026. Karnataka led with a 21% share of cumulative capacity, followed by Rajasthan and Maharashtra, each with 16%.
The five leading states accounted for 77% of cumulative capacity, reflecting the market’s continued concentration in states with strong industrial electricity demand and established open-access frameworks.
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Founder Group's Malaysian unit wins subcontract for Kedah solar farm – Asian Power

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The contract is worth US$1.5m (RM6.05m).
Founder Energy Sdn Bhd, a Malaysian subsidiary of Founder Group Limited, has been appointed subcontractor for a 29.99-MWac solar power plant in Kuala Muda, Kedah, under Malaysia’s Corporate Green Power Programme (CGPP).
The contract, worth US$1.5m (RM6.05m), covers procurement, electrical and mechanical installation, and commissioning of the facility, according to the press release.
Founder Group will also provide long-term asset lifecycle management and integrate the Company’s proprietary artificial intelligence-driven operations and maintenance technologies.
CGPP is a national mechanism enabling corporates to directly procure renewable energy from large-scale solar developers via the grid.
Malaysia’s renewable energy sector targets 70% renewable energy capacity by 2050.
In July 2026, the country launched the Large-Scale Solar (LSS6) framework, which offers 2,500 megawatts of solar capacity, which is expected to attract investment ranging from US$3.2b to US$3.7b. 
 
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Solar boom on Czech apartment blocks: up to five million available and 70% savings on electricity costs – oEnergetice.cz


Interest among unit owners’ associations in apartment buildings in installing photovoltaics has increased tenfold this year. They are also attracted by the upfront payment of subsidies. The associations are now learning how to share energy and send it, for example, to municipal buildings and private companies.
A beige three-storey building in Ostrov, in the Karlovy Vary region, has three entrances, 24 apartments and, since this March, 76 photovoltaic panels on its roof that convert sunlight into electricity. In total, this photovoltaic power plant (PV plant) has an output of 31 kilowatts in full sunlight. It is also connected to a battery with a capacity of 58 kilowatt-hours.
For the local unit owners’ association (SVJ) to acquire a photovoltaic power plant was a logical step. “In the past, we completely insulated the building, added new insulation, replaced the roof covering, upgraded the electrical wiring and so on,” says Roman Kubišta, vice-chairman of the SVJ.
Overall, the power plant, including battery storage and the establishment of a single metering point, cost several million Czech crowns. The SVJ covered most of the costs from its savings and used a subsidy from the New Green Savings programme for apartment buildings for the remainder.
According to Kubišta, obtaining the support went smoothly. “We still applied under the older rules, when the subsidy was provided after completion of the investment project and connection of the source to the distribution grid. Today, the situation regarding subsidies is even more favourable,” Kubišta says.
Twenty-three of the association’s 24 members agreed on the acquisition and technical solution for the power plant. As Kubišta explains, using photovoltaics in an apartment building can be technically arranged in several ways – from those that are administratively simpler, less demanding in terms of time and cost, to those that are more technically, administratively and time-consuming.
“We assessed all the options and ultimately chose the solution that brings us the greatest possible economic benefit. We also selected Bluenet NTS, a company with dozens of similar projects behind it,” Kubišta stresses. However, negotiations with the distribution company were the most demanding part, he says. In total, implementation took almost a year, from signing the contract to connecting to the distributor.
The owners divide the electricity generated so that each apartment is entitled to an amount of electricity from the photovoltaic power plant corresponding to its share of the floor area. The Ostrov SVJ is approaching the point where it will cover 70 percent of its consumption from photovoltaic panels and the battery. The expected savings should correspond to this, meaning that people’s electricity expenses will fall by an average of 70 percent.
He expects to send the first shared kilowatt-hours to these buildings within a few months. So far, the association is satisfied with the progress of the power plant’s trial operation, which is meeting its expectations. However, Kubišta would advise other SVJs to install PV systems only on buildings that are in good technical condition. “A properly designed photovoltaic power plant offers the potential for substantial savings, but installing a PV system on a semi-derelict building with a leaking roof and faulty electrical wiring seems rather foolish,” Kubišta says.
The Ostrov building is one of many in Czechia that have decided to generate their own electricity. Over the past year, it has even been possible to speak of a solar boom on the roofs of apartment buildings. “Interest from SVJs in photovoltaic power plants is more than ten times higher than last year,” notes René Milota, managing director of Acetex, a company specialising in PV systems.
“One reason is the more favourable design of the New Green Savings subsidy scheme, where support is provided in the form of a subsidy paid upfront,” Milota explains. Growing demand is also driven, he says, by the simplified approval process: installing photovoltaics on an apartment building now requires the consent of a simple majority of apartment owners, whereas before 2023 the consent of ideally all owners was required.
For each entrance, Acetex typically installs a power plant with an output of 15 to 30 kWp. Several factors determine how much a building can save thanks to the plant. “It depends on the type of PV system configuration. An installation with a battery makes the most sense, because without one apartment owners save only 20 to 25 percent on energy costs, whereas with a battery they save 50 to 90 percent depending on battery size and on switching their electricity supplier from fixed prices to spot prices,” Milota explains.
A simple rule applies: the larger the battery, the higher the energy savings. “Associations are usually most concerned about investing in batteries, but this is not a rational assessment, because apartment buildings are eligible for a high subsidy for batteries,” Milota says. A typical 50 percent subsidy for an apartment building seeking an installation with batteries ranges roughly from 800,000 to five million Czech crowns.
The growing interest is also evidenced by data from the Czech State Environmental Fund, which administers the subsidy. From last September, when the programme was launched, to the end of the year, the fund received 82 applications worth almost 64 million Czech crowns. That is an average of 25 applications per month. This year, it has received 276 applications worth 233 million, or 35 applications per month. Owners of apartment buildings most often seek insulation of the building envelope, with photovoltaic power plants usually forming part of larger projects.
According to Milota, it is ideal to store electricity in large-capacity batteries during hours when it is cheap, free or negative on the spot market. Their advantage is that during periods of high prices – for example, in the evening – apartments can consume electricity from the battery that was either generated from solar power or purchased by the SVJ at the lowest spot prices of the day. “At the same time, the battery can retain a reserve for sale on the spot market when prices are highest, for example between seven and nine in the evening. By storing cheaper energy in large-capacity batteries, the building locks in a low electricity price for evening consumption,” Milota explains.
Sales and consumption are then controlled by an energy management system, which calculates a day ahead when energy from the batteries will be consumed in the building and whether there will also be energy available for sale on the spot market. According to Milota, it is important to be able to manage energy flows so that no electricity spills into the distribution grid at an unfavourable time, typically around noon and during the early afternoon.
Conversely, surplus electricity should be sold to the grid regularly when conditions are favourable. Installation companies know how to manage this and also offer several different smart energy management solutions.
However, installing photovoltaics on an apartment building is not the same process as installing them on a family home. Many installation companies have no experience with the range of specifics associated with apartment buildings, which is why, according to Milota, choosing a company plays a crucial role. “One specific feature of apartment buildings, for example, is that each entrance must have its own photovoltaic system with one inverter per entrance, so that apartment owners in one entrance can use electricity exempt from distribution charges,” Milota advises.
Republished from the online portal EkoNews.cz, a website covering business and sustainability.
This article is a machine translation of the Czech original and has not yet been fully reviewed. In case of any doubt, please refer to the Czech version.
reuters.com, 24 August 2026, 03:51
reuters.com, 23 August 2026, 22:20
reuters.com, 23 August 2026, 12:03
reuters.com, 23 August 2026, 07:55

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Avaada said to plan public filing for US$800 mil India IPO — Bloomberg – The Edge Singapore

Avaada said to plan public filing for US$800 mil India IPO — Bloomberg  The Edge Singapore
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Italy’s CNR presents bifacial PV tile based on spectral splitting – pv magazine Global

Researchers at the Italian National Research Council (CNR) have developed a four-terminal (4T) photovoltaic tile that uses spectral splitting to direct different portions of the solar spectrum to the cells best suited to convert them. The system directs visible light to a gallium arsenide (GaAs) cell and infrared radiation to a bifacial silicon cell.
“The innovation of the patented new design relies on the use of an optical core in the shape of a wedged right-angled glass prism,” lead author Floriana Morabito told pv magazine. “Overall, the optical core acts as a light guide through a combination of total internal reflection (TIR) at the top surface and dichroic reflections at the mirrors.”
“The optical design is such that the rear side of the bifacial narrow-bandgap (NBG) silicon cell faces south, boosting the collection of albedo irradiation,” added corresponding author Silvia Maria Pietralunga. “At the same time, the 90-degree orientation of the wide-bandgap (WBG) GaAs cell minimizes land use and module self-shading.”
Described in the study “Experimental validation and numerical assessment of 4 T spectral-splitting photovoltaic tile with unconventional bifacial capabilities and minimized shading,” published in Solar Energy, the dual-junction tile was built around a right-angled wedge prism made of Schott N-BK7 glass. It incorporates a 2.0 cm × 2.0 cm GaAs cell with 20% efficiency and a 6.8 cm × 2.0 cm bifacial silicon heterojunction (HJT) cell with approximately 24% efficiency and 90% bifaciality. The bottom and back surfaces of the prism were coated with anti-reflective material to reduce optical losses.
The researchers achieved spectral splitting with complementary long-pass and short-pass dichroic mirrors designed for a 45-degree angle of incidence and a cutoff wavelength of 805 nm. The selected wavelength corresponds to the crossing point of the external quantum efficiency curves of the silicon and GaAs cells, allowing the system to direct the appropriate portion of the spectrum to each cell.
The researchers also designed a custom two-part holder, fabricated using resin 3D printing, to integrate the prism, mirrors, silicon cell and packaged GaAs cell into a single structure. They said the assembled prototype differs from the ideal optical design because of unavoidable air gaps between the prism, mirrors and solar cells, resulting in additional optical losses.
The team characterized the 4T PV tile outdoors at the CNR-IMM laboratories in Catania, Italy, on a ceramic-floored terrace. The measurements broadly followed IEC 60904-2 principles, although the team said full compliance was not possible because the novel 4T design differs from conventional PV modules.
Tests were conducted on four sunny days between late May and mid-July 2025, from 9 a.m. to 5 p.m. Three pyranometers measured global horizontal irradiance, tilted front-side irradiance and reflected irradiance reaching the rear side at five-second intervals. Two spectroradiometers also measured global horizontal and direct normal spectral irradiance across the 300 nm to 1,100 nm wavelength range.
The researchers compared the performance of the prototype with simulations of an ideal device operating under optimal conditions. The ideal design maintained an optical power ratio of more than 90% across a broad range of incidence angles, while the fabricated prototype reached a maximum of approximately 62%.
Outdoor measurements, however, showed relatively stable normalized current from the silicon cell, with values peaking around solar noon and improving slightly as the tile was positioned closer to the ground. The GaAs cell was essentially unaffected by clearance height but showed greater variation throughout the day because of its more restrictive angular acceptance, with output also peaking around noon.
“A clear increase of around 7% in measured photocurrent is obtained in outdoor conditions for a bifacial Si cell with a 23% efficiency, in the morning and late afternoon around the summer solstice at 37°30’ N,” Morabito said. “The maximum photocurrent was constant with the distance from ground, and the best increase in bifacial operation was obtained at a clearance height of 19 cm.”
The results indicate that the 4T architecture can reduce self-shading and improve the use of ground-reflected radiation, with bifacial operation benefiting particularly from relatively low installation heights.
“The 4T solution presented here could prove economically sustainable from a global perspective, as it provides increased efficiency per unit area while requiring low-impact mechanical supports,” Pietralunga said. “The prospects for overcoming the current challenges are promising, as is the potential for further improvements, which could open up viable market opportunities in the near future.”
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A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Tuesday, August 25, 2026
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Enphase enters commercial battery storage market, announces IQ Battery C80 – pv magazine USA

California-based energy technology provider Enphase Energy has announced the commercial launch and U.S. pre-order availability for the IQ Battery C80, marking the manufacturer’s first energy storage platform engineered specifically for commercial and industrial applications. Target deployments include schools, retail locations, commercial offices, and logistics warehouses. Shipments are expected to begin Q1 2027.
The unit arrives fully assembled from the factory to streamline installation and reduce site labor time, complexity, and installation risk. Installers connect external AC conductors to commission the unit, eliminating the need to perform internal module stacking, DC wiring, or field-installed power electronics integration.
Built on an 80 kWh usable capacity modular building block, the system features a distributed, microinverter-based power conversion architecture capable of delivering up to 40 kVA of continuous AC power. Depending on grid configuration, the three-phase system supports 277Y/480 V and 120Y/208 V site interconnections. The system provides a peak output current of up to 96 A, a motor-starting surge capability of 143.3 A LRA, and an AC-to-AC round-trip efficiency exceeding 90%.
The battery enclosure utilizes lithium iron phosphate chemistry paired with active, module-level thermal controls. By relying on smart forced-air cooling and module heaters instead of liquid cooling loops or dedicated HVAC equipment, the platform minimizes internal parasitic power consumption while lowering long-term maintenance requirements.
Safety compliance features include UL 9540A-tested thermal runaway mitigation, individual module-level smoke and gas detection, active pressure relief mechanisms, and an integrated aerosol fire suppression system.
The unit is housed in a compact, floor-mounted outdoor NEMA 3R enclosure measuring 78.7 inches by 36.2 inches by 31.5 inches, designed with front-access service routing for tight commercial footprints.
Designed in the United States, the system complies with FEOC guidelines and incorporates targeted domestic content, enabling commercial tax equity investors and project owners to qualify for bonus adders under the ITC, said Enphase.
The IQ Battery C80 is backed by a 15-year or 7,000-cycle warranty. The battery integrates with Enphase energy management software to perform self-consumption optimization, demand charge reduction, time-of-use arbitrage, and VPP participation.
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A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Entries open in seven categories: Modules, Inverters, BoS, BESS, Manufacturing, Sustainability, Projects.
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Illinois homeowner weighs roof-only solar after HOA rules out ground panels – The Cool Down

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Even though the technology exists, real-world constraints can make a decision around efficient solar power much harder.
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For homeowners hoping to secure backup power while lowering their electricity bills, the calculations can become complicated quickly, especially when HOA restrictions, contractor availability, and time-of-use pricing all factor in.
That reality was on display for one Illinois homeowner trying to figure out how to size solar for a whole-home backup setup without the possibility of a ground-mounted array.
The homeowner took to Reddit’s r/AnkerSOLIXCommunity for help figuring out the sizing. The original poster wanted their Anker E10 battery system to power the house as much as possible while keeping the batteries charged, especially by using cheaper off-peak electricity. 
The setup they described included two Power Modules, four batteries, the Power Dock, which would amount to about 25 kilowatt-hours of power (enough electricity for a small family’s daily usage), and possibly a Smart Generator 5500 for emergencies. But, as the OP put it, “It’s the solar panels I’m trying to figure out if it’s worth it.”
Because neighborhood regulations rule out any ground installation, the OP said the project would have to use the roof. They also said they were not expecting to find a contractor willing to mount Anker’s 440-watt panels, which pushed them toward getting quotes from a standard rooftop solar installer instead.
The OP said ComEd’s standard time-of-use pricing was roughly 10.4 cents, compared with about 5.0 cents during off-peak hours. That means a battery system could help their household save money even before solar is added, simply by charging when power is cheapest and using that stored energy when rates rise.
Using their own rough math, the homeowner said a rooftop solar array could trim the bill by about 50%, which they estimated as roughly $125 to $150 in monthly savings.
They also put the installed cost of a 6- to 7-kW roof system at around $14,000 from their initial research. Those costs may vary depending on location as well as any local or state tax incentives or rebates to get the cost down. A typical whole-home rooftop solar system frequently costs over $25,000, but in areas where it is more expensive per watt of power, the electricity bills are often higher with a higher cost of living, so the nationwide average is that a solar system typically pays for itself in 7-10 years, according to resources like EnergySage.
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Solar panels can save you more than $50k over their 25-year lifespan, and EnergySage can help you save as much as $10k on installation. Which begs the question — isn’t that worth an email or two?
Other Reddit users emphasized that final sizing really depends on the roof and the completed system design. 
One commenter pointed readers to the equipment limits directly, writing, “The direct DC specs are straightforward and listed on the site: 4500W MC4 max 450V 15A with 2x per inverter.”
Another commenter added that the decade estimate for the system’s lifespan was low, writing, “You get more than ten years. Great customer support.”
A larger array is not automatically better if it runs into input caps, shading issues, or installation costs that wipe out the potential savings.
Real-world constraints can make a decision around efficient solar power much harder. HOA restrictions, roof layout, installer preferences, and local utility rates can all determine whether a project feels like a smart investment or a costly gamble.
Yet, what was clear to the OP before even considering adding solar is that battery storage is one of the best ways to protect your home during outages, save money on energy, and move closer to going off-grid. 
If you’re comparing systems, exploring EnergySage can help you get information about home battery storage options, including competitive installation estimates. EnergySage has teamed up with the electrification brand Qmerit to guarantee you get the best price on home battery storage solutions. 
Pila is another company offering excellent battery backup options, and its plug-and-play batteries are priced at a fraction of what a whole-home backup system would cost.
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Utility's 2-year billing error left Missouri homeowner with a solar system too small for house – The Cool Down

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“Apparently we had been severely underpaying for about two years (think $300 a month vs. $700).”
Photo Credit: iStock
A utility billing mix-up upended one Missouri homeowner’s plan to have solar cover all of the house’s electricity use. 
For about two years, the home’s account and a neighbor’s account had been connected to the wrong meters in the utility’s records. As a result, the solar installation was planned around inaccurate billing data and turned out to be far too small for the home’s energy needs.
The main issue, the homeowner explained in a post to Reddit’s r/solar community, was that their system was sized using past utility bills that were later found to be wrong. 
“Last year, I took advantage of the solar tax credit and got solar installed on my home,” the original poster wrote. “We have a large house, 6,000 square feet, but our electric bill was always pretty low. We just thought it was well insulated.
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“… When the utility company came out to inspect, they discovered that we had been paying our neighbor’s bill and our neighbor had been paying ours. … Apparently we had been severely underpaying for about two years (think $300 a month vs. $700).”
So, the homeowner ended up with an undersized solar system, and they asked the subreddit for help, wondering how they should expand the array. 
Several commenters said they should focus on electricity consumption in kilowatt-hours rather than monthly charges. “Get your actual usage for the last few years,” one wrote.
Another recommended, “If your system is working fine without any issue, go back to the same installer.”
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The episode highlights a basic challenge in solar design, as an installer’s calculations are only as good as the utility history behind them. If that history is inaccurate, a system can fail to meet the household’s demand.
The homeowner said they had 39 panels spread across the east- and west-facing roof paired with two 10-kilowatt inverters. They noted peak output was 15.5 kilowatts, which made them think there was headroom.
Adding panels could help the system increase its cost-saving value. The homeowner said they had 1-to-1 net metering and could carry unused credits for up to 12 months, so summer generation could balance winter bills.
Going solar is one of the best ways to save money on home energy, especially when net metering allows summer production to offset seasonal spikes and federal incentives are available. 
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Homeowners weighing a first system or an expansion can explore EnergySage to get free installation estimates and compare quotes. Those who do can save up to $10,000.
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UNSW launches grid protection project for inverter-based power systems – pv magazine India

Researchers at Australia’s University of New South Wales (UNSW) have launched a new project to address challenges associated with the secure operation of power systems with high shares of inverter-based resources.
Unlike conventional coal-fired generators, inverter-based resources can provide different fault currents, potentially making faults harder for existing protection systems to detect. The team will investigate these challenges to help future-proof Australia’s renewable energy transition.
“Essentially, we need to keep operating a safe and reliable power system,” UNSW Sydney Associate Professor in Energy Systems Georgios Konstantinou said in a statement. “This work will help to future-proof, manage risks and reduce the costs associated with renewable power systems. It will be a continuous process of informing both industry and the research community about problems and solutions with inverter-based resources (solar, wind, batteries), their fault current contributions and power system protection.”
The project, titled Protection & Relay Operation for Inverter-based Low-inertia Electricity Systems (PROFILES), will run for three and a half years until the end of 2030, at a total cost of AUD 12.9 million. About half of the funding was awarded in a grant from the Australian Renewable Energy Agency (ARENA). Other industry partners include Transgrid, the Australian Energy Market Operator (AEMO)ElectraNetPower ElectronicsSMATesla and Siemens.
AEMO had previously highlighted the need to ensure that grid-forming inverters can provide fault currents that allow protection systems to operate reliably. The PROFILES project was established in response to that, aiming to establish a basis for how grid-forming battery energy storage systems can support system security and interact with protection systems when providing fault current.
“It will assess protection equipment options and identify where replacement or reconfiguration may be needed so transmission network service providers can factor these requirements into maintenance and future design strategies,” the project page states. “The work is also intended to support least-cost system strength procurement decisions and establish the technical foundations for future higher-fidelity studies, including potential network trials.”
Specifically, the project will use modeling, simulation and hardware-in-the-loop testing to better understand the relationship between inverter-based resources and the operation of grid protection systems.
Hardware-in-the-loop testing, which connects physical equipment to a real-time simulation, will be carried out at UNSW Sydney’s Real-time Digital Simulation (RTS) Laboratory. The facility is the largest of its type in Australia. It includes an 18-rack real-time digital simulator, protection relays and amplifiers for relay testing, as well as equipment for controller and power hardware-in-the-loop testing.
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Solar Cell Capacity Under ALMM Grows to 39.4 GW – Mercomindia.com

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In the latest update, MNRE added 7.6 GW of solar cell capacity
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The Ministry of New and Renewable Energy (MNRE) has added 7,632 MW of solar cell capacity under the Approved List of Models and Manufacturers (ALMM) List-II in its ninth revision.
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Ethiopian Farmers Save Thousands by Switching to Solar Irrigation–While Cutting Emissions – Good News Network

Farmers in Ethiopia are slashing their growing costs, increasing food production, and protecting the environment thanks to solar-powered irrigation systems introduced through the Nature-based Solutions for Sustainable and Inclusive Development program led by the international nonprofit Farm Africa.
In a country famous for its “13 months of sunshine”, Ethiopia has enormous potential to harness solar energy.
While the country has abundant water resources and millions of acres of irrigable land, most small farmers still rely on rainfall to grow their crops—leaving them vulnerable to drought and erratic weather patterns.
Even for those with irrigation systems, extreme shortages and rising fuel prices sparked by the Iran war are disrupting production and cutting into farmers’ profits.
Reliable climate-friendly irrigation arrived, thanks to funding from Farm Africa and the Sida Swedish Development Agency, introduced solar-powered water pumps in Central Ethiopia and around the capital city Addis Ababa.
The technology replaces diesel and petrol-powered pumps that are expensive to run, difficult to fuel and contribute to greenhouse gas emissions.
Solar-powered irrigation systems provide a cost-effective and environmentally friendly alternative, helping to improve agricultural productivity, food security, and household incomes.
In Akaki Kality, a vegetable-growing cooperative made up of 25 members previously relied on diesel-powered pumps to irrigate their land, using 2,300 liters of fuel during a single three-month growing cycle.
Switching to solar-powered irrigation is expected to save the cooperative almost $6,000 in fuel costs alone.
For other farmers in the rural Oromia Region, regularly obtaining fuel was not only costly but time-consuming, often requiring lengthy journeys and administrative approvals before fuel could be purchased.
By switching to solar irrigation, the entrepreneurs have eliminated their use of diesel—and their worry over fluctuations in fuel prices and shortages.
In addition to providing financial savings of thousands, reliable solar-powered irrigation enables the farmers to continue producing crops during extended drought patterns.
“Farmers have had to wait in queues for hours to purchase fuel, costing precious time that should be spent farming. The impact on productivity has been severe.”
By eliminating the need for fossil fuels to power irrigation, solar pumps reduce greenhouse gas emissions and support more environmentally sustainable farming systems.
And it has transformed rural livelihoods for many. (Learn more from the website.)
“Solar irrigation is a clean energy source that can deliver a powerful double dividend: lower costs for farmers and a healthier planet for future generations,” says Farm Africa Program Manager Ayele Feleke.
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In 2009, scientists began with a 3.8% perovskite solar cell. 17 years later, LONGi's silicon-perovskite ta – The Economic Times

Solar cell efficiency has dramatically increased from 3.8% in 2009 to 35.5% today. This new crystalline silicon-perovskite tandem cell was independently certified by ESTI. The technology combines two absorbers to capture more of the solar spectrum. Researchers are now focusing on long-term stability and manufacturing scalability.

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Enery clinches 10-year PPA with telecoms Orange in Slovakia – Renewables Now

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Europe's heat waves are stress-testing solar panels, cutting output by as much as 16% – The Cool Down

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Under intense sunlight, localized electrical mismatches may show up as hotspots.
Photo Credit: iStock
Europe’s increasingly intense heat waves may bring abundant sunshine, but that does not always translate to peak solar performance. 
Solar panels and battery systems respond not only to light but also to heat, which can reduce output.
A new analysis by solar experts Andreas Kern and Philippe Staudinger for PV Magazine reported that photovoltaic modules are typically tested at a cell temperature of 77 degrees Fahrenheit, even though actual module temperatures can climb far above the surrounding air temperature during heat waves.
Using a temperature factor of -0.4% per degree, the analysis found that a solar cell at 149 degrees Fahrenheit (65 degrees Celsius) may produce about 16% less power than it would under the normal testing benchmark.
Even so, higher temperatures do not mean solar generation stops. Strong sunlight still helps drive electricity production, and summer air conditioning often pushes power demand higher. Kern and Staudinger’s overriding takeaway was that, rather than be put off by the findings, the solar industry should instead factor heat waves into their testing of components in order to find the best overall approach.
Under intense sunlight, localized electrical mismatches may show up as hotspots, while dirt, partial shading, overgrown vegetation, and damaged cell areas can become more apparent.
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Every percentage point of lost output can cut into expected utility bill savings, particularly during high-demand summer periods when electricity is most valuable.
Batteries add another layer to the heat question.
Solar-plus-storage systems can move extra midday electricity into the evening, reduce curtailment, and support the grid. But the analysis highlighted that lithium-ion batteries also tend to age faster when they are exposed to heat, kept at high charge levels for extended periods, and cycled more deeply.
That can happen in practice when a battery fills quickly around midday and then stays nearly full for hours in hot weather. Cooling systems also have to work harder at those times, which raises self-consumption and reduces overall efficiency.
When a system is poorly designed or not well maintained, owners may end up with weaker performance, faster battery degradation, more repairs, and less value from equipment meant to reduce energy costs.
The report advises that operators should treat solar panels, batteries, inverters, and electrical infrastructure as parts of one connected system. Choices such as better ventilation, shaded battery containers, and maintenance-friendly layouts can make a major difference during extreme heat.
The report also emphasized stronger monitoring. That means watching irradiance, ambient and module temperatures, battery temperatures, state of charge, and inverter behavior so operators can tell normal heat-related losses apart from a local fault that needs attention.
Regular upkeep matters too. Cleaning modules, managing vegetation, using thermography, and checking connectors, cables, junction boxes, and transformers can help catch small problems before they become expensive ones.
Panel count is only part of the equation; system quality and energy management matter just as much. A well-designed setup can do more to protect expected utility bill savings and help costly equipment last longer.
As the authors wrote: “Heat waves are therefore more than just a seasonal extreme. They are a practical test of whether photovoltaic, storage, and hybrid systems can be understood and managed throughout their entire life cycle.”
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Best Portable Solar Panels [Hands-On] – Top Firearm Reviews

Best Portable Solar Panels [Hands-On]  Top Firearm Reviews
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Tata Power commissions 190.5MW solar plant in Rajasthan, India – Power Technology

The development of the solar plant forms part of a larger 460MW FDRE project.
Tata Power Renewable Energy (TPREL), a subsidiary of Tata Power, has commissioned a 190.5MW solar project in Kalasar, Rajasthan, India, as part of tranche-1 of the SJVN firm and dispatchable renewable energy (FDRE) initiative.
The development of the plant is part of a larger 460MW FDRE project.
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It will supply electricity to distribution companies including Haryana Power Purchase Centre, the Maharashtra State Electricity Distribution Company and the Noida Power Company.
The project is designed to enhance grid reliability and features a 115MW-hour advanced battery energy storage system (BESS).
The scheme integrates large-scale solar power generation with energy storage and grid support infrastructure, aiming to provide consistent and dispatchable renewable electricity.
The company said it navigated several challenges during construction, including tight deadlines and supply chain disruptions that affected transmission materials, module mounting structures and other critical equipment.
Recent technologies such as a BESS, and Harmonic Filter Bank and Static Var Generator systems have been implemented at the site.
The switchyard was reportedly completed within three months and the Harmonic Filter Bank in one month.
Commissioning of the 190.5MW plant takes TPREL’s total renewable utility capacity to 12.4GW.
Of this, approximately 6.9GW is currently operational, comprising 5.6GW of solar and 1.3GW of wind.
An additional 5.5GW is under various stages of implementation and expected to become operational over the next two years.
The company stated that its projects are aligned with India’s goal of reaching 500GW of non-fossil fuel capacity by 2030.
Tata Power, a vertically integrated energy company within the Tata Group, operates across all segments of the power sector.
Its total capacity, including projects currently under construction, is more than 26GW, of which around 17.7GW is from clean energy sources and roughly 8.8GW from thermal generation.
Last month, TPREL commenced construction on an 800MW energy project in Andhra Pradesh, India.
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Very-low-bandgap thermophotovoltaics for operation at higher temperatures – pv magazine Global

Researchers in France have developed very-low-bandgap thermophotovoltaic (TPV) cells featuring a barrier layer designed to suppress dark current. TPV, not to be confused with photovoltaic-thermal (PVT) technology, converts infrared (IR) radiation from heat sources directly into electricity using PV cells. Potential applications include thermal energy storage and the conversion of industrial process heat into electricity.
The technology has attracted scientific interest for decades because it can potentially capture a broader portion of the solar spectrum and has the technical potential to exceed the Shockley-Queisser limit of conventional photovoltaics. However, efficiencies reported to date have been too low for commercial viability, as TPV devices continue to suffer from optical and thermal losses.
“Our work reports on the first fabrication and characterization of a very-low-bandgap TPV cell (0.23 eV at 200 K), made of an indium arsenide/indium arsenide antimonide (InAs/InAsSb) type-II superlattice absorber, which is the material now widely used for photodetectors,” corresponding author Rodolphe Vaillon told pv magazine. “In other words, we have transformed an IR photodetector into a TPV cell, capable of operating at higher temperatures than those usual for IR photodetectors.”
Vaillon added that materials and structures used in IR photodetectors, such as InAs/InAsSb type-II superlattice barrier structures, appear to be good candidates for TPV energy conversion. “We show that the barrier structure is performing better than the standard p-intrinsic-n (PIN) structure at operating temperatures larger than 150 K. A photovoltaic effect is even observed at room temperature,” he said.
Very-low-bandgap TPV cells are suited to converting lower-energy infrared radiation, making them potentially useful for lower-temperature heat sources while also helping to maximize power generation. Their main drawback, however, is high dark current – unwanted electrical current that flows through a cell even in the absence of incoming radiation – which reduces voltage and power output.
High dark current typically requires very-low-bandgap cells to operate at cryogenic temperatures, such as around 77 K (−196 C). To reduce this cooling requirement, the researchers introduced an aluminum arsenide antimonide (AlAsSb) barrier layer. The barrier creates a band offset that restricts unwanted carrier flow through the device and suppresses surface-current leakage, thereby reducing dark current and enabling the cell to maintain better performance at higher operating temperatures.
The researchers fabricated two InAs/InAsSb type-II superlattice TPV cell designs: a conventional PIN structure used as a reference and a barrier structure incorporating a 200 nm AlAsSb layer. They processed the wafers into both small “micro” mesa cells and 1 × 1 cm² “macro” cells using metallization and wet etching. The micro cells also underwent sidewall passivation and received dielectric coatings.
The researchers characterized the grown layers using high-resolution X-ray diffraction, atomic force microscopy and photoluminescence measurements, while the finished devices underwent temperature-dependent current-voltage and dark-current testing. They then measured photovoltaic performance under infrared radiation from an 800 C thermal emitter positioned 14 cm from the cells.
“Once processed, the cells exposed to an 800 C emitter displayed improved performance by more than tenfold when compared to standard PIN ones (for temperatures above 150 K),” the researchers said. “The barrier layer, specific to this cell design, was also found to contribute greatly to the suppression of surface current leaking when associated with a passivation step (sulfuration).”
At a cell temperature of 123 K (−150 C), the barrier cells recorded open-circuit voltages of around 23 mV and fill factors of about 0.2, although one measurement produced an open-circuit voltage of 0.15 V. The researchers also demonstrated that a passivated barrier micro cell continued to exhibit a photovoltaic effect at 273 K (around 0 C), with an open-circuit voltage of about 75 mV.
“The fabrication process is robust, but improvements could still be expected by working on the characterization setup (especially the view factor) or by increasing the absorber bandgap to see how it affects the dark current,” the researchers concluded.
The results were presented in “Fabrication and characterization of very-low bandgap InAs/InAsSb thermophotovoltaic cells,” published in Solar Energy Materials and Solar Cells. Researchers from the French National Centre for Scientific Research (CNRS), the University of Montpellier, the University of Orléans, and the University of Toulouse contributed to the study.
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Tuesday, August 25, 2026
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pv magazine USA hosts its third multi-day virtual event on advancing U.S. solar and energy storage markets, covering financing, supply chains, and distributed energy’s role in grid resilience.
Thursday, October 7, 2026
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Enviromena kicks off construction of 68-MWp solar farm in England – Renewables Now

Renewables Now is a leading business news source for renewable energy professionals globally. Trust us for comprehensive coverage of major deals, projects and industry trends. We’ve done this since 2009.
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India adds 3 GW of open-access solar in Q2 – pv magazine India

India added 3 GW of open-access (off-site commercial and industrial) solar capacity in the second quarter (Q2) of 2026, the highest quarterly addition on record,according to Mercom India’s newly released Q2 & 1H 2026 India Solar Open Access Market Report.
Installations increased 10% quarter over quarter (QoQ), with Rajasthan accounting for 25% of capacity additions in Q2 2026.
Solar open-access additions reached nearly 6 GW in the first half (1H) of calendar year (CY) 2026, up 42% year over year (YoY) from 4 GW in 1H 2025.
According to the report, the installation activity during the first half was influenced by a combination of regulatory deadlines and changing market conditions. Developers accelerated procurement and commissioning ahead of the phased reduction in Inter-State Transmission System (ISTS) charges waiver and the enforcement of sourcing requirements under the Approved List of Models and Manufacturers (ALMM) List-II. Although the ALMM List-II requirements for open access projects were later deferred until the end of 2026, the relief came only after the original deadline had passed, by which time many developers had already advanced procurement and commissioning schedules.
“The record installations and a large pipeline demonstrate the strength of underlying demand from commercial and industrial consumers. However, rising project costs, transmission constraints, changing banking and open access regulations, and domestic sourcing requirements are putting pressure on project economics,” said Priya Sanjay, managing director at Mercom India. “The opportunity remains significant, but growth will increasingly depend on states providing predictable regulations and developers being able to deliver projects at tariffs that continue to offer meaningful savings to consumers.”
As of June 2026, cumulative installed solar open access capacity stood at 36 GW. Karnataka remained the leading state with a 21% share, followed by Rajasthan and Maharashtra at 16% each. Together, the top five states accounted for 77% of cumulative capacity, reflecting the market’s continued concentration in states with strong industrial demand and established open access frameworks.
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Available in print and digital – get your copy today!
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India MNRE ALMM List-II Update: G12R TOPCon Cells from Emmvee, Waaree, Avaada – News and Statistics – IndexBox

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India’s Ministry of New and Renewable Energy (MNRE) has released the ninth revision of its Approved List of Models and Manufacturers (ALMM) List-II for solar PV cells, according to a report from PV Tech. The update adds larger-format G12R n-type tunnel oxide passivated contact (TOPCon) cells from Emmvee Energy, Waaree Energies, and Avaada Electro, signaling a continued shift toward larger cell designs in the domestic manufacturing market.
Waaree Energies has introduced a G12R, 16-busbar n-type bifacial TOPCon cell, measuring 210mm by 182.3mm. The new cell has an average efficiency of 25.39% and an average wattage of 9.73W, compared with its previous M10R cell’s 25.54% efficiency and 8.53W wattage. The change primarily reflects a move to a larger format and higher wattage rather than an efficiency gain. The model will be produced at Waaree’s Navsari, Gujarat facility, with a validity period from December 15, 2025, to December 14, 2029.
Emmvee Energy has added its EM16D1-TCM12R bifacial mono-crystalline silicon TOPCon cell, which measures 182.3mm by 210mm and uses 16 busbars. It has an average efficiency of 25.60% and an average wattage of 9.80W. This builds on Emmvee’s earlier EM16D1-TCM10 model, which uses a smaller 182.2mm by 183.75mm format and has an average efficiency of 24.62% and wattage of 8.24W. The new model also has a higher listed manufacturing capacity of 2,153MW per year, up from 1,553MW for the earlier model. The listing is valid from July 31, 2025, to July 30, 2029, and production will occur at its Bengaluru, Karnataka facility.
Avaada Electro has added two G12R n-type TOPCon cell variants for its facility in the Butibori Industrial Area in Nagpur, Maharashtra. The first, N-G12R-16B-HC-AVA, is a half-cut cell measuring 105mm by 182.3mm, with an average efficiency of 25.83% and wattage of 4.93W. The second, N-G12R-16B-FC-AVA, is a full-cell version measuring 210mm by 182.3mm, with an average efficiency of 25.71% and wattage of 9.83W. Both use 16 busbars. Avaada’s earlier portfolio included G12 TOPCon cells with 18 busbars, with half-cut and full-cell variants having average efficiencies of 25.63% and 25.57%, respectively. The new models are listed from July 22, 2026, to July 21, 2030, and the company was first added to the list in the eighth revision published on July 22, 2026.
The revision also includes amendments to existing listings from other manufacturers. TP Solar has revised its mono-crystalline PERC and TOPCon bifacial cells produced at its Gangaikondan Industrial Park facility in Tirunelveli, Tamil Nadu. For its 182.2mm by 182.2mm, 10-busbar PERC cell, the listed efficiency range has been changed from 22-23.7% to 20.50-23.70%, and wattage from 7.27-7.84W to 6.55-7.84W. Its TOPCon cell now has an efficiency range of 20.50-25.50% (previously 22.5-25.5%) and wattage of 6.55-8.43W (previously 7.44-8.43W). TP Solar was added to the list under the first revision in August 2025.
RenewSys has received a revision for its 182.2mm by 183.75mm, 16-busbar bifacial n-type TOPCon cell at its Maheswaram facility in Telangana, with an efficiency range of 20.50-25.60% and wattage of 6.85-8.54W. Premier Energies has revised its G12R, 182.3mm by 210mm, 16-busbar bifacial n-type TOPCon cell produced at its Telangana plant, covering efficiency from 22.50-26.00% and wattage from 8.61-9.95W. Reliance Industries has revised its HJT cell manufactured at its Jamnagar, Gujarat facility, which measures 210mm by 105mm and has no busbars, with an efficiency range of 23.80-26.00% and wattage of 5.28-5.74W.
Interactive table based on the Store Companies dataset for this report.
This report provides a comprehensive view of the solar cells and light-emitting diodes industry in India, tracking demand, supply, and trade flows across the national value chain. It explains how demand across key channels and end-use segments shapes consumption patterns, while also mapping the role of input availability, production efficiency, and regulatory standards on supply.
Beyond headline metrics, the study benchmarks prices, margins, and trade routes so you can see where value is created and how it moves between domestic suppliers and international partners. The analysis is designed to support strategic planning, market entry, portfolio prioritization, and risk management in the solar cells and light-emitting diodes landscape in India.
The report combines market sizing with trade intelligence and price analytics for India. It covers both historical performance and the forward outlook to 2035, allowing you to compare cycles, structural shifts, and policy impacts.
This report provides a consistent view of market size, trade balance, prices, and per-capita indicators for India. The profile highlights demand structure and trade position, enabling benchmarking against regional and global peers.
The analysis is built on a multi-source framework that combines official statistics, trade records, company disclosures, and expert validation. Data are standardized, reconciled, and cross-checked to ensure consistency across time series.
All data are normalized to a common product definition and mapped to a consistent set of codes. This ensures that comparisons across time are aligned and actionable.
The forecast horizon extends to 2035 and is based on a structured model that links solar cells and light-emitting diodes demand and supply to macroeconomic indicators, trade patterns, and sector-specific drivers. The model captures both cyclical and structural factors and reflects known policy and technology shifts in India.
Each projection is built from national historical patterns and the broader regional context, allowing the report to show where growth is concentrated and where risks are elevated.
Prices are analyzed in detail, including export and import unit values, regional spreads, and changes in trade costs. The report highlights how seasonality, freight rates, exchange rates, and supply disruptions influence pricing and margins.
Key producers, exporters, and distributors are profiled with a focus on their operational scale, geographic footprint, product mix, and market positioning. This helps identify competitive pressure points, partnership opportunities, and routes to differentiation.
This report is designed for manufacturers, distributors, importers, wholesalers, investors, and advisors who need a clear, data-driven picture of solar cells and light-emitting diodes dynamics in India.
The market size aggregates consumption and trade data, presented in both value and volume terms.
The projections combine historical trends with macroeconomic indicators, trade dynamics, and sector-specific drivers.
Yes, it includes export and import unit values, regional spreads, and a pricing outlook to 2035.
The report benchmarks market size, trade balance, prices, and per-capita indicators for India.
Yes, it highlights demand hotspots, trade routes, pricing trends, and competitive context.
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Concise View of Market Direction
Market Size, Growth and Scenario Framing
Commercial and Technical Scope
How the Market Splits Into Decision-Relevant Buckets
Where Demand Comes From and How It Behaves
Supply Footprint and Value Capture
Trade Flows and External Dependence
Price Formation and Revenue Logic
Who Wins and Why
How the Domestic Market Works
Commercial Entry and Scaling Priorities
Where the Best Expansion Logic Sits
Leading Players and Strategic Archetypes
How the Report Was Built
Major integrated solar manufacturer
India's largest solar module manufacturer
Part of Adani Group, integrated manufacturing
Leading manufacturer, part of Tata Group
Major PV module and cell producer
Historical leader in solar manufacturing
Makes solar cells, modules, encapsulants
Module and cell manufacturer
Solar PV module manufacturer
Solar panel manufacturer and distributor
Manufactures solar modules and inverters
Solar panel manufacturer
Solar panel manufacturer
Solar panel manufacturer
Solar cell and module manufacturer
Major LED lighting products manufacturer
Leading electrical goods co, major LED player
Major manufacturer of LED lights and fixtures
Major player in LED lighting segment
LED lighting manufacturer
Manufactures LED displays and lighting
Indian subsidiary, major LED mfg in India
Manufactures LED lights and fixtures
Major Indian electrical brand, produces LEDs
LED lighting products manufacturer
Manufactures LED bulbs and lighting
Major player in consumer LED lighting
Leading LED lighting solutions provider
Manufactures LED lights under Finolex brand
Wires & cables major, also manufactures LEDs
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TCL Electronics Considers Spin-Off And Separate Listing Of Photovoltaic Business – TradingView

TCL Electronics Considers Spin-Off And Separate Listing Of Photovoltaic Business  TradingView
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ES Foundry plans n-type transition while keeping PERC as foundation – PV Tech

US solar cell manufacturer ES Foundry is taking a cautious approach to the country’s shift towards n-type technologies, using established p-type passivated emitter rear contact (PERC) technology for its current manufacturing operations while preparing to transition to a next-generation cell technology.
Speaking to PV Tech Premium, ES Foundry CEO Alex Zhu said the company’s strategy is focused on delivering commercially bankable US-made cells today, while its eventual move to n-type technology will depend on intellectual property (IP), supply chain and equipment considerations.

“We will move to n-type technology. However, we haven’t decided which n-type technology we will go with because this depends on multiple things like IP issues, the supply chain, and equipment availability,” Zhu said.
ES Foundry recently completed a 2GW expansion at its Greenwood, South Carolina facility, taking its total annual cell manufacturing capacity to 3GW. Its initial 1GW capacity began operations in 2025, with the expanded capacity expected to be fully ramped by October.
Zhu said the company’s focus on operating production capacity differentiates it from a US market that has seen numerous large-scale manufacturing announcements.
“In terms of actual production, we are the largest crystalline solar cell manufacturer in the US,” he said.
While tunnel oxide passivated contact (TOPCon), heterojunction (HJT) and back-contact (BC) technologies have increasingly displaced PERC in international markets, Zhu said ES Foundry selected PERC because of its manufacturing maturity and established market acceptance.
“The reason we chose PERC is that it is very reliable and has a robust process window,” he said.
He added that PERC’s established track record provides greater familiarity for financial institutions and customers, while helping the company train a US manufacturing workforce with limited experience in large-scale solar cell production.
US trade measures are creating both challenges and opportunities. A recently announced 15% tariff on imported polysilicon and its derivatives under Section 232 is expected to increase ES Foundry’s wafer costs.
“Our current wafer cost is, for example, from 4 cents to 7 cents imported from overseas. And after that, our cost will increase to like 15 cents plus 2 cents tariffs,” Zhu said.
However, he expects stronger demand for domestic-content products could partly offset higher costs, particularly from projects supporting AI data centres.
“Even a domestic content module by itself is more expensive, but when you’re calculating into the whole formula, the total project cost will reduce,” he said.
The company currently expects demand to support its 3GW capacity, with offtake agreements extending through 2028.
Read our full interview with Zhu here.
The state of the US solar supply chain will be explored in detail at our annual PV CellTech USA conference in San Francisco on 13-14 October 2026. For full agenda and booking details, click the link above.

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Floating PV as a drought defense strategy – Solarplaza

Article
Author: Solarplaza
De-risking Europe's water and power assets
Reservoirs across Southern and Central Europe lost visible volume again this summer. For water authorities, that means rationing plans and emergency pumping. For hydro operators, it means throttled turbines and lost generation hours. Floating Photovoltaics (FPV) usually gets pitched as a clean-energy play, measured in megawatt-hours. That undersells it. Sitting directly at the water-energy nexus, FPV is also an active drought-defense asset – one that protects raw water supplies while it generates power.
Key takeaways
Image credit: Evides
Evaporation: the clearest water case for FPV
Open water in direct sun and wind loses volume fast – that's simple physics, and it's the single biggest water-loss point for exposed reservoirs. Covering that surface with FPV panels cuts it substantially: research published in the International Journal of Low-Carbon Technologies and MDPI Water puts the reduction at 40% to 70%, depending on panel density and the local microclimate.
Scaled across Europe's water bodies, that adds up to hundreds of millions of cubic meters retained annually. For a municipal water authority, every cubic meter kept in the reservoir is one less cubic meter of emergency pumping – and more resilience heading into the next heatwave.
Hydro-hybrid: buying time and flexibility for dam operators
Pairing FPV with existing hydropower solves a real operational headache: declining hydraulic head during drought. When inflow drops, hydro plants are often forced into curtailment just to protect minimum pool levels.
By keeping more water behind the dam, FPV helps operators hold head levels longer into the dry season. Instead of running turbines continuously at low efficiency to cover baseload, operators can lean on daytime FPV output and save the water – then dispatch hydro into the evening price spike once solar drops off. Rather than a straight loss, seasonal scarcity becomes more like a flexible, manageable asset.
Water quality: real research, not a settled story
Drought and warm water are a known recipe for toxic cyanobacteria (blue-green algae) blooms, which force drinking water utilities into costly chemical treatment or intake shutdowns. It's tempting to assume that shading the water with panels simply solves this – less sunlight, less algae. The reality on the ground is more complicated.
That's exactly the gap that field research is starting to close. Dr. Giovanni Sandrini, Microbiology Researcher at Evides Waterbedrijf, has been studying a floating solar system on a Dutch drinking water reservoir and found a more nuanced picture: some algae types declined under the panels, while benthic cyanobacteria actually increased in the shaded zone. It's a useful reminder that FPV's water-quality effects depend heavily on site conditions, coverage, and which organisms you're tracking – and it's precisely this kind of granular, evidence-based finding that utilities and developers need before they can bank water-quality benefits into a business case.
Permitting and public tenders: an underused argument
Land-use conflict and grid-connection pushback are slowing ground-mounted solar across Europe. FPV sidesteps the land fight by using artificial water bodies instead –  but developers who pitch it purely on clean energy output often still run into municipal skepticism about water impacts.
The developers getting ahead of that are the ones building quantified water-retention and quality data directly into their public Requests for Proposals. Framed well, that turns FPV from "another solar project" into a tangible co-benefit for the municipality – a stronger footing for winning concessions and moving faster through local permitting.
Where water management meets project finance
Turning these water-saving co-benefits into a bankable financial model takes real data and proven risk frameworks – which is exactly what's on the agenda at the Solarplaza Summit Floating PV Europe, taking place on 8 October 2026 in Amsterdam.
Two sessions worth planning your day around:
 
As climate pressure keeps building across Europe, water security is becoming part of the renewable energy business case, and not just a side note. Project developers, water utilities, hydro operators, and financial investors: join us at the Solarplaza Summit Floating Solar PV Europe in Amsterdam on 8 October 2026 to work out how to quantify, pitch, and finance the full value of floating solar.
To learn more about
join Solarplaza Summit Floating PV Europe on 8 October, taking place in Amsterdam.
Copyright © 2026 Solarplaza International
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Space-Based Solar Power Is On Its Way – Communications of the ACM

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Emerging projects suggest technologies that could supply the grid, datacenters, and other energy-hungry facilities with electricity from space could be here within five years.
Credit: bombermoon / Getty Images
It has taken the best part of a century, but the notion of collecting the Sun’s energy in outer space and beaming it to collectors on Earth to generate electricity 24 hours a day—an idea hatched by science fiction author Isaac Asimov in 1940—is edging towards reality and could arrive early next decade.
The realization of viable space-based solar power (SBSP) systems has long been stymied by a lack of enabling technologies, but thanks to a clutch of successful ground and orbital power-beaming tests, and advances in reusable, heavy-lift rocketry and in-space assembly robots, entrepreneurs and nation-states alike now believe SBSP is becoming economically and technically possible, and a number of varied power-beaming-from-space projects are now in the planning.
Startup Overview Energy (Ashburn, VA), for example, in late April announced plansa for a constellation of SBSP satellites that, sometime in 2030, will begin beaming a gigawatt of power to Meta’s AI datacenters. Unlike other SBSP approaches, Overview’s technology beams power from space to existing solar panels on the ground, using a near-infrared, laser-based power beaming technique that it is currently patenting. This choice of wavelength lends Overview an ability to deliver energy to solar panels at night, giving companies like Meta extra hours of solar power from terrestrial infrastructure that normally lies idle when the sun is not out.
“Under our agreement, Meta has 24/7 access to the beam capacity,” said Laura Wetzel, an Overview Energy representative. “Since they have a lot of solar projects in different places around the world, they’ll be able to use the beam somewhere at any given time.”
Overview Energy also has struck a deal with the U.S. Air Forceb to supply power from space to remote bases in Alaska and the Pacific.
British startup Space Solar (Harwell, Oxfordshire), for example, plans to beam between 200 kilowatts and several megawatts of power from space to an isolated science research base in the Antarctic. Said Sam Adlen, co-CEO of Space Solar, “Our current baseline plan sees the polar power project going live in six years, followed by a 30-megawatt system for Iceland, but in practice it will depend on how financing comes together.”
Speaking of demand, Adlen said, “As AI workloads surge and datacenters proliferate globally, electricity demand is growing at a pace that threatens to outstrip supply. So the race is on to secure energy which can accommodate AI’s exponential growth.” He said space-based solar power satellites can provide datacenters the “continuous, clean, and abundant source of power” they’ll need, as ground antennas can be built on top of them, allowing them to receive “low cost, reliable, continuous gigawatt scale power directly.”
In the U.S., a raft of startups are focused on SBSP. John Bucknell, CEO of Virtus Solis (Troy, MI), is planning a full end-to-end service for energy suppliers. “We’ll deliver complete power plants, including the inverters, grid connection, space launch, everything. As we look like a solar farm from a construction perspective, any solar developer can stand up a SBSP ground station,” Bucknell said.
Others have more focused SBSP ideas. Cowboy Space Corp. (San Carlos, CA), for instance, formerly called Aetherflux, is planning a system to provide on-demand, beamed power to remote military bases, to populations suffering sustained power outages after natural disasters, and to datacenters in space. Mantis Space (Albuquerque, NM), aims to beam power from orbit to light-starved satellites that are eclipsed in Earth’s shadow.
On top of these private sector ventures, China,c Japan,d and the U.K.e are investigating SBSP technology with the aim of launching kilometer-scale satellites in the mid-2030s and beyond as a means of generating gigawatts of power to help reach net-zero-carbon targets by 2050. The 27-nation EU is also undertaking feasibility studies.
The broad idea behind most SBSP projects is to harvest solar power in outer space, rather than on Earth. Thanks to the day-night cycle, clouds, rain, and the vagaries of the seasons, even the biggest commercial solar farms sprawled across fields and deserts on Earth can only deliver intermittent power, while in space, SBSP systems are expected to deliver power continually, as long as they have technology to beam energy through Earth’s moisture-laden atmosphere.
In most SBSP architectures, the idea is that a satellite with kilometer-long solar arrays in geostationary orbit harvests gigawatts of solar energy 24/7 and transmits it, in the form of a safe, low-intensity microwave power beam, to a five-kilometer-wide ground antenna, which converts it to electricity for the grid. As microwave wavelengths are not absorbed by water, the power beam always reaches the ground antenna, whatever the weather.
Key to making this an efficient process has been the integration of the SBSP spacecraft’s solar panels with semiconductor microwave amplifiers, so the combination operates as one so-called “sandwich” module—with low losses compared to previous designs that fed electricity from the solar panels to separate microwave oscillators.
The ground antenna is formally known in SBSP circles as a “rectenna”—short for rectifying antenna—as its role is to receive the alternating microwave signal by inducing currents in an array of simple, cheap dipole antennas. Diodes then rectify the AC to direct current, and the DC signal is then used to energize inverters that produce AC at the local grid frequency.
Explained Space Solar’s Adlen, “These antennas are comprised of a transparent, mesh-like structure. They can be sited to enable crops to grow underneath, or allow areas to be re-wilded, or they can be sited over a terrestrial solar farm or datacenter. They take up about 40% of the land area of terrestrial solar for an equivalent energy output.”
The microwave beam, spread out over 5km, has only 25% of the power density of the midday Sun at the Equator, which SBSP proponents say presents no risk to people, animals, or vehicles passing through it.
Asimov described the broad idea of SBSP in the 1941 short story Reason,f but gave no clues on how it might be accomplished.
In a 1968 Science articleg, Peter Glaser, head of engineering sciences at Arthur D. Little (Cambridge, MA), proposed the use of a microwave power beam as the weatherproof downlink for SBSP. While actually putting it into practice was infeasible in 1968, advances in technology have yielded thinner, increasingly efficient solar cells, semiconductor microwave amplifiers, solid-state phased array transmitters, and carbon fiber spacecraft construction that make SBSP possible.
On the energy transmission front, NASA in 1975 demonstrated power beamingh with a 2.4-GHz microwave signal transmitted 1.5 kilometers through air, delivering 34 kilowatts to a receiver fitted with gallium arsenide semiconductor conversion circuits. In 2021, researchers at the U.S. Naval Research Laboratory successfully tested conversion of solar-derived electric power to microwaves in an experiment mounted on a U.S. Space Force spacecraft.i
In 2023, an experiment successfully tested microwave beam generation and beam steeringj in space, using a system developed by a team at Caltech using phased array antennas. Caltech’s experiment also proved that a tension-loaded ultralight carbon-fiber structure designed to support solar panels and power beaming transmitters could self-deploy in orbit.
Recent developments in self-deploying large solar panel arraysk by U.S.-based spaceflight contractor Redwire also look set to make SBSP satellites a feasible orbital build, as they unfurl themselves using stored strain energy in the material, rather than power-hungry motors.
SBSP proponents appear to have the hardware they need to ship and assemble in orbit kilometer-scale solar collecting and beaming spacecraft.
On the software side, autonomous guidance, navigation, and control algorithms will keep the spacecraft tracking the Sun so solar panels remain energized, but they will also have to securely seek out and lock onto ground antennas to steer power beams to them without spilling the signal outside them, wasting energy. Said Paul Jaffe, vice-president of systems engineering at Overview Energy, “We use a ground-based beacon the size of a shipping container to tell the satellite where to point, and coarse and fine tracking loops to home in on the receiver.”
Added Jaffe, who ran the SBSP orbital tests on the U.S. Space Force’s X-37B spaceplane for the U.S. Defense Department’s Naval Research Laboratory, “There might be a challenge in making our computing resources both extremely cheap and [space] radiation-tolerant for long periods of time, but any challenge in that area is probably negligible compared to doing the same for the photovoltaics in orbit.”
What is the timeline for an active SBSP system? Space Solar plans to beam microwave power to the Rothera Research Stationl on Adelaide Island on the Antarctic Peninsula in the early 2030s. The hope is that Space Solar’s SBSP satellite, which will have 20,000 solar panel layers arranged in a helix, with a large solar reflector capping each end of a DNA-like spiral, will provide the base with a sustainable source of power, at least 200 kilowatts of electricity, possibly more.
If the Iceland installation works as planned, Space Solar will build a bigger satellite to feed a ground antenna 1.5 kilometers across with 30 megawatts of electricity for Reykjavik Energy. Both the Antarctic and Icelandic satellites will only deliver intermittent power because the elliptical orbits needed to reach their respective northern and southerly latitudes mean the satellites will only dwell over their targets for a few hours a day. Space Solar says that will be enough to charge batteries until the next orbital pass.
Overview Energy plans to beam near-infrared laser light to standard terrestrial solar farms. The company will offer power producers running conventional ground-based solar farms the ability to enable their arrays to continue to capture energy after the sun sets, since a gap in the atmosphere’s water absorption spectrum allows a small range of near-infrared wavelengths to cut through the moisture unharmed.
Cowboy Space has noticed this as well. The company is planning to beam energy from low Earth orbit SBSP satellites via near-infrared lasers to circa-10-meter-diameter ground receivers at military bases in remote areas where it is risky to deliver fuel, and also in disaster zones where hospitals, first-responder organizations, and cellphone networks need power.
Earth is not the only target for SBSP. Just as Mantis Space plans to beam laser light to satellites in the dark of Earth’s shadow to keep them powered up, an infrared-laser SBSP project in the works from Volta Space Technologies is targeting the Moon. During the two-week-long lunar night, temperatures plummet to minus 130 Celsius (-202 degrees F), which can embrittle and fracture batteries and critical electronic systems. Volta is planning a constellation of SBSP satellites in lunar orbit that will beam power to warm the electronics of lunar rovers, landers, and surface science equipment to help them survive the lunar night.
During an interviewm on Late Night with David Letterman in October 1980, Asimov took credit for inventing space-based solar power, and hinted at a lunar offshoot: “I talked about space stations getting energy down to Earth in 1940 and I got that almost right, but I put it in Mercury’s orbit, instead of the Moon’s orbit, to get it closer to the Sun. But maybe someday we’ll do that.”
AS SBSP PREPARES FOR LIFTOFF, SATELLITE
CONGESTION PRESENTS POTENTIAL THREATS
Plans for Space-Based Solar Power (SBSP) satellites are being laid at an exceptionally challenging time in the history of spaceflight, as Earth orbits are becoming ever more dangerously congested with satellites thanks to the advent of the “megaconstellations” that now deliver broadband Internet to digitally underserved, remote areas from low Earth orbit. California-based SpaceX, a pioneer of this technology, has in the last five years launched 10,000 of the 42,000 satellites it says its Starlink orbital Internet service will ultimately require. That has increased the orbital population from 4,000 satellites five years ago to 14,000 today.
Starlink’s success has prompted commercial and nation-state rivals, such as Amazon, OneWeb, and the Chinese government, to plan their own large orbital Internet constellations—to the extent that the regulator, the UN’s International Telecommunication Union, says spaceflight operators have now applied to launch no less than 1.7 million satellites by 2030. This is regarded as unsustainable by astronomers at the European Southern Observatory, which has said that such numbers will have “devastating consequences.”
It does not end at broadband provision, however. On top of the orbital Internet, firms such as SpaceX, and startups Starcloud (Redmond, WA) and Orbital Compute (Los Angeles, CA), are planning to evade the power demands of datacenters on Earth by launching millions of small GPU compute clusters into orbit on what SpaceX founder Elon Musk called ‘AI satellites’. Each spacecraft alone does not pack much compute power, but by using laser links to connect them with other AI satellites, they might collectively be able to offer datacenter-like performance on inference tasks. Once again, the spacecraft numbers here are very high: SpaceX wants to fly 1 million AI satellites, Starcloud 88,000, and Orbital Compute 100,000.
Such vast satellite numbers raise a litany of so-far unresolved issues. First, they threaten the dark skies that optical astronomers need to scan the heavens, not least for potential incoming near-Earth asteroids. Second, the radio signals from these satellites can interfere with radio astronomy, too. Third, the end-of-life reentry of these satellites (they run out of fuel after five years) deposits aluminum oxide in the upper atmosphere which, ongoing research suggests,n could deplete Earth’s radiation-protective ozone layer. Fourth, the reentries present a threat to civil aviation, as debris could strike pressurized aircraft if a falling satellite does not burn up completely.
A fifth issue—possibly the space industry’s biggest fear related to having millions of satellites packed into low Earth orbits below 2,000 kilometers—is a runaway phenomenon called Kessler Syndrome. Named after a former NASA engineer, Don Kessler, who in 1978 predicted what could happen when a satellite in an overly-packed orbit suffers a failure and collides with another, or simply suffers an in-orbit breakup, perhaps due to a fuel tank explosion. This, Kessler predicted, would create a blizzard of space debris, which could then strike other satellites, creating a collision cascade in which more and more debris is created in a chain reaction that could leave low Earth orbit an unnavigable scrapyard of hypersonic metal, threatening not only commercial satellite operations but also the lives of astronauts in crewed spacecraft and space stations.
Research is ongoing into mitigating the threat to dark skies, reentry ozone depletion, civil aviation risks and the space situational awareness that could limit Kessler Syndrome risks, but whether regulation can be put in place in time in remains to be seen.—Paul Marks
Paul Marks is a technology, aviation, and spaceflight journalist, writer, and editor based in London, U.K.
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Emerging projects suggest technologies that could supply the grid, datacenters, and other energy-hungry facilities with electricity from space could be here within five years.
It’s taken the best part of a century, but the notion of collecting the Sun’s energy in outer space and beaming it to collectors on Earth to generate electricity 24 hours a day—an idea hatched by science fiction author Isaac Asimov in 1940—is edging towards reality and could arrive early next decade. 
The fruition of space-based solar power (SBSP) has long been stymied by a lack of enabling technologies, but thanks to a clutch of successful ground and orbital power-beaming tests, and advances in reusable, heavy-lift rocketry and in-space assembly robots, entrepreneurs and nation-states now believe SBSP is becoming economically and technically possible, and a number of varied power-beaming-from-space projects are now in the planning.
Startup Overview Energy (Ashburn, VA), for example, in late April announced plans for a constellation of SBSP satellites that, sometime in 2030, will begin beaming a gigawatt of power to Meta’s AI datacenters. Unlike other SBSP approaches, Overview’s technology beams power from space to existing solar panels on the ground, using a near-infrared, laser-based power beaming technique that it is currently patenting. This choice of wavelength lends Overview an ability to deliver energy to solar panels at night, giving companies like Meta extra hours of solar power from terrestrial infrastructure that normally lies idle when the sun is not out. 
“Under our agreement, Meta has 24/7 access to the beam capacity,” said Laura Wetzel, an Overview Energy representative. “Since they have a lot of solar projects in different places around the world, they’ll be able to use the beam somewhere at any given time.”
Overview Energy also has struck a deal with the U.S. Air Force to supply power from space to remote bases in Alaska and the Pacific. 
British startup Space Solar (Harwell, Oxfordshire), for example, plans to beam between 200 kilowatts and several megawatts of power from space to an isolated science research base in the Antarctic. Said Sam Adlen, co-CEO of Space Solar, “Our current baseline plan sees the polar power project going live in six years, followed by a 30-megawatt system for Iceland, but in practice it will depend on how financing comes together.”
Speaking of demand, Adlen said, “As AI workloads surge and datacenters proliferate globally, electricity demand is growing at a pace that threatens to outstrip supply. So the race is on to secure energy which can accommodate AI’s exponential growth.” He said space-based solar power satellites can provide datacenters the “continuous, clean, and abundant source of power” they’ll need, as ground antennas can be built on top of them, allowing them to receive “low cost, reliable, continuous gigawatt scale power directly.”
In the U.S., a raft of startups are focused on SBSP. John Bucknell, CEO of Virtus Solis (Troy, MI), is planning a full end-to-end service for energy suppliers. “We’ll deliver complete power plants, including the inverters, grid connection, space launch, everything. As we look like a solar farm from a construction perspective, any solar developer can stand up a SBSP ground station,” Bucknell said.
Others have more focused SBSP ideas. Cowboy Space Corp. (San Carlos, CA), for instance, formerly called Aetherflux, is planning a system to provide on-demand, beamed power to remote military bases, to populations suffering sustained power outages after natural disasters, and to datacenters in space. Mantis Space (Albuquerque, NM), aims to beam power from orbit to light-starved satellites that are eclipsed in Earth’s shadow.
On top of these private sector ventures, China, Japan and the United Kingdom are investigating SBSP technology with the aim of launching kilometer-scale satellites in the mid-2030s and beyond as a means of generating gigawatts of power to help reach net-zero-carbon targets by 2050. The 27-nation EU is also undertaking feasibility studies.
Why Use Space-Based Solar Power?
The broad idea behind most SBSP projects is to harvest solar power in outer space, rather than on Earth. Thanks to the day-night cycle, clouds, rain, and the vagaries of the seasons, even the biggest commercial solar farms sprawled across fields and deserts on Earth can only deliver intermittent power, while in space, SBSP systems are expected to deliver power continually, as long as they have technology to beam energy through Earth’s moisture-laden atmosphere.
In most SBSP architectures, the idea is that a satellite with kilometer-long solar arrays in geostationary orbit harvests gigawatts of solar energy 24/7 and transmits it, in the form of a safe, low-intensity microwave power beam, to a five-kilometer-wide ground antenna, which converts it to electricity for the grid. As microwave wavelengths are not absorbed by water, the power beam always reaches the ground antenna, whatever the weather.
Explained Space Solar’s Adlen, “These antennas are comprised of a transparent, mesh-like structure. They can be sited to enable crops to grow underneath, or allow areas to be re-wilded, or they can be sited over a terrestrial solar farm or datacenter. They take up about 40% of the land area of terrestrial solar for an equivalent energy output.”
The microwave beam, spread out over 5km, has only 25% of the power density of the midday Sun at the Equator, which SBSP proponents say presents no risk to people, animals, or vehicles passing through it.
SBSP’s Multi-Decade Technological Evolution
Asimov described the broad idea of SBSP in a 1941 short story Reason,” but gave no clues on how it might be accomplished.
In a 1968 Science article, Peter Glaser, head of engineering sciences at Arthur D. Little (Cambridge, MA), proposed the use of a microwave power beam as the weatherproof downlink for SBSP. While actually putting it into practice was infeasible in 1968, advances in technology have yielded thinner, increasingly efficient solar cells, semiconductor microwave amplifiers, solid-state phased array transmitters, and carbon fiber spacecraft construction that make SBSP possible.
On the energy transmission front, NASA in 1975 demonstrated power beaming with a 2.4-GHz microwave signal transmitted 1.5 kilometers through air, delivering 34 kilowatts to a receiver fitted with gallium arsenide semiconductor conversion circuits. In 2021, researchers at the U.S. Naval Research Laboratory successfully tested conversion of solar-derived electric power to microwaves in an experiment mounted on a U.S. Space Force spacecraft.
In 2023, an experiment successfully tested microwave beam generation and beam steering in space, using a system developed by a team at Caltech using phased array antennas. Caltech’s experiment also proved that a tension-loaded ultralight carbon-fiber structure designed to support solar panels and power beaming transmitters could self-deploy in orbit.
Recent developments in self-deploying large solar panel arrays by U.S.-based spaceflight contractor Redwire also look set to make SBSP satellites a feasible orbital build, as they unfurl themselves using stored strain energy in the material, rather than power-hungry motors.
SBSP proponents appear to have the hardware they need to ship and assemble in orbit kilometer-scale solar collecting and beaming spacecraft.
On the software side, autonomous guidance, navigation, and control algorithms will keep the spacecraft tracking the Sun so solar panels remain energized, but they will also have to securely seek out and lock onto ground antennas to steer power beams to them without spilling the signal outside them, wasting energy. Said Paul Jaffe, vice-president of systems engineering at Overview Energy, “We use a ground-based beacon the size of a shipping container to tell the satellite where to point, and coarse and fine tracking loops to home in on the receiver.”
Added Jaffe, who ran the SBSP orbital tests on the U.S. Space Force’s X-37B spaceplane for the U.S. Defense Department’s Naval Research Laboratory,  “There might be a challenge in making our computing resources both extremely cheap and [space] radiation-tolerant for long periods of time, but any challenge in that area is probably negligible compared to doing the same for the photovoltaics in orbit.”
First Light for SBSP
What is the timeline for an active SBSP system? Space Solar plans to beam microwave power to the Rothera Research Station on Adelaide Island on the Antarctic Peninsula in the early 2030s. The hope is that Space Solar’s SBSP satellite, which will have 20,000 solar panel layers arranged in a helix, with a large solar reflector capping each end of a DNA-like spiral, will provide the base with a sustainable source of power, at least 200 kilowatts of electricity, possibly more.
If the Iceland installation works as planned, Space Solar will build a bigger satellite to feed a ground antenna 1.5 kilometers across with 30 megawatts of electricity for Reykjavik Energy. Both the Antarctic and Icelandic satellites will only deliver intermittent power because the elliptical orbits needed to reach their respective northern and southerly latitudes mean the satellites will only dwell over their targets for a few hours a day. Space Solar says that will be enough to charge batteries until the next orbital pass.
Overview Energy plans to beam near-infrared laser light to standard terrestrial solar farms. The company will offer power producers running conventional ground-based solar farms the ability to enable their arrays to continue to capture energy after the sun sets, since a gap in the atmosphere’s water absorption spectrum allows a small range of near-infrared wavelengths to cut through the moisture unharmed.
Cowboy Space has noticed this as well. The company is planning to beam energy from low Earth orbit SBSP satellites via near-infrared lasers to circa-10-meter-diameter ground receivers at military bases in remote areas where it is risky to deliver fuel, and also in disaster zones where hospitals, first-responder organizations, and cellphone networks need power.
Space-to-Space Energy
Earth is not the only target for SBSP. Just as Mantis Space plans to beam laser light to satellites in the dark of Earth’s shadow to keep them powered up, an infrared-laser SBSP project in the works from Volta Space Technologies is targeting the Moon. During the two-week-long lunar night, temperatures plummet to minus 130 Celsius (-202 degrees F), which can embrittle and fracture batteries and critical electronic systems. Volta is planning a constellation of SBSP satellites in lunar orbit that will beam power to warm the electronics of lunar rovers, landers, and surface science equipment to help them survive the lunar night.
During an interview on Late Night with David Letterman in October 1980, Asimov took credit for inventing space-based solar power, and hinted at a lunar offshoot: “I talked about space stations getting energy down to Earth in 1940 and I got that almost right, but I put it in Mercury’s orbit, instead of the Moon’s orbit, to get it closer to the Sun. But maybe someday we’ll do that.”
Paul Marks is a technology, aviation, and spaceflight journalist, writer, and editor based in London, U.K.

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Solar project costs may rise 20% over next six to eight months amid domestic sourcing and supply pressures – Prop News Time

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Utility-scale solar project costs in India could increase by around 20% over the next six to eight months, according to ICRA, as developers face higher costs for domestically sourced solar cells and key raw materials. Domestic cells currently carry a premium of about INR 5–6 per watt over imported cells, while higher freight and supply-chain costs linked to the West Asia conflict are adding pressure. The Centre has extended a limited exemption from ALMM List-II requirements for solar cells to net-metering and open-access renewable projects until December 2026. More than 150 GW of renewable projects were under construction as of June 2026, adding to the importance of equipment and transmission availability.
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Utility-scale solar project costs in India could rise by around 20% over the next six to eight months as developers face higher domestic sourcing costs, elevated raw material prices and freight pressures linked to the West Asia conflict, according to ICRA. The increase comes as India continues to expand renewable capacity, with more than 150 GW of renewable energy projects under construction as of 30 June 2026. 
A major source of cost pressure is the widening difference between imported and domestically manufactured solar cells. ICRA estimates that a module manufactured by a domestic original equipment manufacturer using imported cells costs around 16 US cents per watt, compared with about 22.5 US cents per watt when domestic cells are used. This represents a premium of roughly 6–7 US cents per watt, or around INR 5–6 per watt. 
The pricing pressure is emerging as India increases requirements for domestic sourcing of solar equipment. The Ministry of New and Renewable Energy (MNRE) has maintained the Approved List of Models and Manufacturers (ALMM) List-II policy for solar photovoltaic cells, while providing a limited exemption for certain projects. Under the decision announced in July, net-metering and open-access renewable energy projects can be commissioned without ALMM List-II compliance for solar cells until 31 December 2026. 
The Centre had previously allowed this exemption for the specified segment until 31 May 2026. MNRE said the extended window was intended to support standalone solar module manufacturers with existing inventories and provide additional time for projects to transition towards sourcing cells from manufacturers included in ALMM List-II. The ministry also said domestic solar PV manufacturing remains a key focus of its efforts to build self-reliance in the sector. 
Domestic manufacturing capacity has expanded, although cell production remains considerably smaller than module capacity. ALMM-registered module manufacturing capacity increased to 215.5 GW in July 2026 from 173 GW in March, while domestic solar cell capacity stood at 31.8 GW. ICRA expects the resulting module overcapacity to contribute to consolidation, with vertically integrated manufacturers likely to have greater resilience. 
The cost increase is also emerging alongside weaker renewable project award activity. Renewable capacity awards declined from 40.6 GW in FY25 to 14.7 GW in FY26, while only 4.7 GW had been awarded in FY27 up to 10 August. Unsigned power purchase agreement capacity remained at about 40–45 GW as of April 2026. ICRA said bidding has increasingly shifted towards firm, dispatchable and round-the-clock renewable power. 
Grid constraints are another concern for project economics. ICRA estimates that about 37% of capacity at affected substations in the northern, western and southern regions is operating under temporary General Network Access, with curtailment of 30–50% during solar hours. Peak curtailment has reached 8,617 MW in the western region and 5,573 MW in the northern region. 
Storage is consequently becoming more important for renewable integration. Battery energy storage system capacity that was operational, under construction or awarded stood at around 90 GWh as of June 2026. ICRA expects India’s renewable energy generation share, including large hydro, to exceed 35% by FY30, compared with 22% in FY25. Despite near-term cost and execution pressures, the ratings agency retains a stable outlook for the renewable sector. 
Source- PIB
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TAN: Photovoltaic Market Saturation Is Closer Than Market Consensus (NYSEARCA:TAN) – Seeking Alpha

Engineers working at solar power plant

Luis Alvarez/DigitalVision via Getty Images

Luis Alvarez/DigitalVision via Getty Images
Over the last 10 years, solar PV has grown at an unprecedented rate. Since 2015, global PV installations have increased thirteenfold from 51 GW to 664 GW in 2025. By the end of 2025, global solar capacity reached
This article was written by
Analyst’s Disclosure: I/we have no stock, option or similar derivative position in any of the companies mentioned, and no plans to initiate any such positions within the next 72 hours. I wrote this article myself, and it expresses my own opinions. I am not receiving compensation for it (other than from Seeking Alpha). I have no business relationship with any company whose stock is mentioned in this article.
Seeking Alpha’s Disclosure: Past performance is no guarantee of future results. No recommendation or advice is being given as to whether any investment is suitable for a particular investor. Any views or opinions expressed above may not reflect those of Seeking Alpha as a whole. Seeking Alpha is not a licensed securities dealer, broker or US investment adviser or investment bank. Our analysts are third party authors that include both professional investors and individual investors who may not be licensed or certified by any institute or regulatory body.

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Energys Group buys two firms in lighting and solar for buildings – Stock Titan

Energys Group buys two firms in lighting and solar for buildings  Stock Titan
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Injured Rishabh Pant Smashes Massive Six, Damages Solar Panel In Colombo – NDTV Sports

Injured Rishabh Pant Smashes Massive Six, Damages Solar Panel In Colombo  NDTV Sports
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India Needs Batteries to Keep Its Solar Boom Going – Bloomberg.com

India Needs Batteries to Keep Its Solar Boom Going  Bloomberg.com
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Solar panels bolted over 2 working irrigation canals in California's Central Valley cut evaporation beneath them by as much as 70 percent, and the aquatic weed that fouls those channels dropped by about 85 percent – EcoPortal.net

The Pulse
Steel trusses cross a working irrigation canal in Stanislaus County, and rows of solar panels sit on them like a lid.
The water underneath keeps moving, shaded from the Central Valley sun.
The electricity goes to farms and homes on either side, which was the whole plan.
The second result was not planned at all.
It is the one that matters more to the people who actually run the canal.
Sun on open water drives two processes at once. It lifts vapor off the surface, and it feeds the plants growing in the channel.
Block the light and both slow down together.
The panels intercept radiation that would otherwise warm the top few inches, so less water leaves before it reaches a field. The same shadow withholds the light algae and submerged plants need to photosynthesize, a separate mechanism with a separate payoff.
Heat and wind matter as well, and a canal running fast loses less than one standing still. But sunlight is the input both processes share, and it is the only one a canopy removes.
One structure, two effects, and nobody has to touch a valve to get the second.
The pilot put solar canopies over two stretches of Turlock Irrigation District canal, one near Hickman east of Modesto and one near Keyes. The district is an unusual host, because it runs about 250 miles of canals and sells power directly to homes and farms.
So the electricity has somewhere to go without new transmission.
Those two channels were picked to be as unlike each other as possible. One is roughly 20 feet across, the width of an alley. The other runs about 110 feet, closer to an eight lane highway, spanned by a single truss with nothing standing in the water.
The hardware varies on purpose, from that clear span down to bank mounted frames and retractable sections that slide aside. Together the arrays come to roughly one and a half megawatts, small for a power plant and large for an experiment.
Sensors went into the water under the panels and into uncovered stretches nearby, then ran continuously through an entire irrigation season, not a few afternoons. Evaporation beneath the arrays fell by 50 to 70 percent against those open reaches.
Growth of algae and aquatic weed dropped by about 85 percent, and that is the figure with an operating budget attached. Weed control is a bill an irrigation district pays every summer, in crews, in machinery, and in water a clogged channel never delivers.
Roger Bales, professor emeritus of civil and environmental engineering at the university running the science, said his team had treated the canals as a living laboratory for three years.
Building it turned an estimate into a measurement. Those are different kinds of number.
The idea began as modeling work led by a postdoctoral researcher, whose paper ran in a sustainability journal five years ago. It put the prize at about 63 billion gallons a year if all of the state’s 4,000 miles of open canal were covered, comparable to the residential needs of two million people. Then somebody built a piece of it.
Cost is what stands in the way of the rest. Ground mounted panels on flat land already compete with conventional generation, while spanning a channel means steel, custom engineering and clearance for a maintenance rig.
The district’s director of external affairs has said that gap has to be closed by the combined value of saved water, land nobody buys, and weed crews nobody sends out.
That right of way brings a grid connection already attached, the same quiet advantage Arizona canals have been testing on tribal land. The channel carries the water, and if it also carries the racking, the interconnection point is a short run away.
A report to the state from the research team is the document the district is waiting on. It decides whether Turlock builds any more of this.
Maintenance access sits on the tracking list next to generation, evaporation, water quality and weed growth. Crews have to get machinery into the channel, and a canopy that seals off its own canal is not a solution at any price.
The agency running California’s largest water system is following the same results as it weighs canopies over its own aqueduct, and floating solar in New Jersey is working through the same tangle of wildlife and access.
Scale is the honest caveat. Even the full 63 billion gallons would be a fraction of one percent of what California agriculture uses in a year, and the researcher behind the estimate has called it unrealistic to assume every mile ever gets covered.
What the canal did show is that the shade holds in moving water on a surface that was already there, with no farmland displaced and no field scraped flat to make room.
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Indiana power outage stretches into a second week, leaving some families without answers – The Cool Down

© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.
Spoiled groceries can mean wasted money and wasted food.
Photo Credit: TikTok
For some residents in Northwest Indiana, the hardest part of a prolonged power outage is not just sitting in the dark — it is hearing that the lights may stay off for several more days.
In a recent TikTok video, content creator and small-business owner Karen (@regionwaxstudio) captured that frustration as NIPSCO customers faced the possibility of an eighth day without power.
Karen said in the video: “It is day seven, 8 p.m. here in northwest Indiana, specifically Highland, Indiana. Still no power in my home.”
In an update on Aug. 20, NIPSCO said power might not be fully restored until the 25th, according to WGN9, leaving some areas without service for more than a week. For people already trying to sort out meals, work, sleep, and transportation, an estimate like that can turn a serious outage into a crisis managed one day at a time.
Commenters from nearby communities shared similar experiences. One wrote, “Girl I’m in Highland too, and we are still without power but our neighbors across the street do … torture.” Another added, “Merrillville day 9 just begun.”
With food at home already spoiled, the creator said they chose to get pizza rather than try to cook during the outage.
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Spoiled groceries can mean wasted money and wasted food, adding another burden for households already under stress. That can be especially hard on families living paycheck to paycheck, older adults, and small-business owners whose responsibilities do not stop when the power goes out.
The creator described the emotional toll, saying, “It is stressful. It is frustrating.”
One commenter expressed that same exhaustion, writing, “I live in Highland too. And my heart drop when I saw we won’t get power until next week. I’m exhausted and depressed ughhh.”
Clear communication is one of the most important needs during a lengthy outage. Utilities can reduce some of the uncertainty by providing more localized updates, more accurate restoration windows, and clearer explanations when estimates change.
At the household level, residents can document spoiled food and other outage-related expenses, keep phones charged whenever possible, and check on neighbors who may need additional support.
Local businesses can also become informal relief hubs, whether by offering hot meals, a place to recharge devices, or simply a temporary escape from the stress at home. Karen, who runs her own wax studio, offered free brow waxes for her community. While freshly groomed eyebrows may not be considered essential, that small gesture can bring a bit of relief during stressful times. 
When Karen offered the service in the comments, one person replied, “OMG, please let me know, I will need that.” And another added, “Same, I saw that update last night and wanted to just cry, I almost lost it this weekend, it was so hot and muggy.” 
The video ends with: “But praying for a better night. I hope. I hope that it’s a blessing and a miracle that NIPSCO just magically appears like the Tooth Fairy and fixes our light.”
Get TCD’s free newsletters for easy tips, smart advice, and a chance to earn $5,000 toward home upgrades. To see more stories like this one, change your Google preferences here.
© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.

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India Needs Batteries to Keep Its Solar Boom Going – Bloomberg

India Needs Batteries to Keep Its Solar Boom Going  Bloomberg
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Hot Vs Cold: What's The Ideal Temperature For Solar Panel Efficiency? – Engadget

There is a correct answer, but ambient temperature is just one of several variables.
Sunlight is a solar panel’s best friend. But heat, not so much.
The most common number you will see is 77 degrees Fahrenheit. That is 25 degrees Celsius, which is the temperature of the cell when manufacturers rate panels under standard test conditions, alongside irradiance of 1,000 watts per square meter. It’s a good indicator, but it’s not a magic outdoor temperature at which your roof achieves peak output.
So yeah, cold wins, technically. The efficiency of solar cells is typically higher at lower temperatures because the voltage decreases more than the current increases with temperature. The problem is that efficiency and total electricity production are not the same. A cold panel might generate more power from the same amount of sunlight, but a hot summer day might generate more power because there might be more sunlight.
The first wrinkle is that the temperature on your weather app isn’t necessarily the temperature of the panel. A module in direct sunlight can be much hotter than the ambient air temperature, and Sandia National Laboratories, a US Department of Energy lab, models module temperature based on ambient temperature, solar irradiance, wind speed and mounting configuration.
As soon as the cells get hotter than their rated reference temperature, output begins to drop according to the panel’s temperature coefficient. There isn’t one universal 0.5 percent penalty. REC Group, a leading solar panel manufacturer, has a maximum-power temperature coefficient of -0.24 percent per degree Celsius for its current Alpha Pure-RX, while solar manufacturer Qcells lists -0.29 percent per degree Celsius for its residential Q.TRON BLK M-G2+ series. If you live in a place that’s really hot, that’s something to consider.
Nor is 77 degrees Fahrenheit “too hot” in the sense that the panel is in danger. The Q.TRON model has a continuous operating range of up to 158 degrees Fahrenheit, according to Qcells. REC lists a T98 module operating temperature of 176 degrees Fahrenheit for the Alpha Pure-RX. The Department of Energy says extreme heat can still damage cells and other module materials and shorten their operating lifetimes.
This is where the simple hot vs cold answer gets complicated. While a bright, cold day can be great for solar efficiency, clouds, snow, roof orientation, sun angle and daylight hours may be more important to the amount of electricity your system can generate.
So the best time is not necessarily 10AM to 4PM. Output generally rises as more direct sunlight reaches the panels, then falls later in the day, but an east-facing array will be different from a west-facing array. Although panels can run hotter in the summer, the longer days and often stronger solar resources can result in more total electricity being produced.
That’s also why some homeowners size a solar system above their typical electricity needs. The 20 percent rule for solar panels is based on giving a solar system some breathing room when conditions aren’t ideal.
The National Laboratory of the Rockies’ PVWatts calculator (the lab’s free online estimator) allows you to input location and system information to estimate monthly and annual production, which gives you a more specific answer than “summer” or “midday.” NLR does not specify a single best month or time of day, and it cautions that PVWatts cannot account for all site-specific variations or differentiate between higher- and lower-performing PV technologies.
Its expected production range is based on 30 years of actual weather data.

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Yorkshire sees 9,700 solar installations in first half of 2026 – BBC

A record-breaking 9,700 solar installations were fitted in Yorkshire and the Humber in the first half of this year, the government has said.
According to the Department for Energy Security and Net Zero, this represents enough energy to power the equivalent of up to 16,300 homes.
It builds on the 9,300 solar installations fitted in the same period in 2025.
David Skaith, Mayor of York and North Yorkshire, said: "Thousands of families and businesses across Yorkshire are benefiting from solar, helping to bring down their bills, build our county's energy security and put power back into the hands of local people."
York Minster is among the landmarks to be adorned with solar technology.
Alex McCallion, director of works and precinct at the minster, said the £400,000 project was "setting an example and a planning precedent in a restricted heritage environment".
He said: "This system is guaranteed for 30 years, its payback is just under eight years which gives us 22 years of free energy."
Earlier this year, BBC News reported that the government had awarded contracts to a record supply of renewables projects, including 157 solar developments across England, Scotland and Wales.
While welcomed by climate and clean energy groups, some communities faced with large developments have opposed such schemes.
During a visit to York last week, Climate Minister Katie White said the government wanted solar farms to be part of its Clean Power mission but that did not mean "every single farm should go through".
"We need to make sure we're working together, listening to people, but land for solar is a good opportunity for the UK and for farmers," she said.
"And as we've all seen in the summer we've just had, we want to make sure we're using the sun that is there, but also protecting ourselves against future climate change, which we can all see is happening now."
The government is hoping more households will be able to cut energy bills, with plug-in solar panels due to hit shops this week.
The panels are already widely used by households across Europe, with Germany seeing about half a million new devices plugged in every year.
White said: "When the Middle East crisis hit in March we were keen to look at all the options for consumers, so we've fast-tracked a process to bring them forward to market but the number one thing we've been looking at is safety.
"We've had an independent third party look at electrical safety and our standards are going to be higher than the Germans, so as of [this] week you can go to mainstream retailers, they're going to be having these plug-in solar."
The Department for Energy estimates that a typical UK home could save up to £500 a year from installing rooftop solar panels, based on the current energy price cap.
As of June, more than 2.1 million solar installations have been recorded across the UK.
Listen to highlights from North Yorkshire on BBC Sounds, catch up with the latest episode of Look North.
Council leader Sean Matthews describes the decision as an attack on Lincolnshire's countryside.
The project has been approved by the government despite opposition from local people and their MP.
The site also provided 75% of New Cross Hospital's electricity between April 2025 and March.
The site will be checked for unexploded bombs before the solar farm near Messingham can be built.
A dispute over a solar panel plan is resolved, with the complainant now a proponent for the site.
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This Solar-Powered BMW EV Prototype Produces More Energy Than It Needs – bgr.com

Solar panels are extremely expensive, which is why you don’t often see this technology used on automobiles. Some cars have incorporated small solar panels onto the body panels, but large-scale use is cost prohibitive. Lightyear’s solar car with 300-mile range didn’t survive because production cost more than funding, and Sono Motors ran into the same issue. Looking to overcome cost, a team of automotive engineering grad students from Clemson University may have come up with a solar-powered car that’s actually profitable. Partnered with BMW, the Clemson University International Center for Automotive Research (CU-ICAR) created its Deep Orange 17 solar car prototype, designed to collect more solar energy than it consumes during a standard commuting day.
Clemson’s students first considered how a car is used in urban settings, factoring in sunlight conditions and commuting routines in cities such as Madrid, Mumbai, Frankfurt, and Greenville, South Carolina (where CU-ICAR is located). Nicknamed Luminetta, this prototype is able to collect 5.7kWh of energy in a single day, while the average 12-mile commute expends just 1.6 kWh. Under those modeled conditions, the car can produce enough surplus energy for an extra 31 miles of travel.
The Deep Orange 17 prototype is expected to be on display at the 2027 Consumer Electronics Show (CES), and it will also be used as a research test bed at Clemson’s CU-ICAR campus where future automotive engineering students will use it as a platform for new ideas. They may want to start with the windshield, because thanks to a new breakthrough, your windows could soon generate electricity.
The Luminetta is essentially a driving solar panel with an exterior that integrates 1,781 photovoltaic cells. German research institute Fraunhofer ISE helped develop the ingenious shingled solar system. It arranges small solar-cell strips into a shingled matrix. The strips overlap like roof shingles. They’re covered with a durable outer film that conforms to curved surfaces. It can keep collecting sun when portions of the car are shaded because the matrix lets current flow around those areas. Even the vehicle’s orange-bronze color is high-tech. Fraunhofer’s MorphoColor paint is structured to allow 95% of usable light to reach the panels. In that way, the paint is different from Mercedes’ solar paint that could lead to nearly unlimited EV range.
To produce the kind of results the Clemson team saw, they had to look beyond solar panels. Luminetta weighs 1,212 pounds. Compare that to Lightyear’s solar car, which weighed more than 3,400 pounds. The chassis mixes steel, aluminum, carbon fiber, and 3D-printed metal joints to cut weight while preserving strength. Using the boxfish as an inspiration, the team created a vehicle that looks like a pixelated video game car come to life, but it actually reduces drag. Internal upgrades included regenerative braking, intelligent torque distribution, and tightly managed drivetrain controls.

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Michigan city puts free rooftop solar and batteries on homes to outlast blackouts – The Cool Down

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“Our medicine was saved. Our food was saved. It was a godsend. It was amazing.”
Photo Credit: iStock
Ann Arbor, Michigan, is testing whether neighborhood-scale solar and battery systems can make blackouts less disruptive and electric bills less painful.
In Bryant, a neighborhood on the city’s southeast side, residents can have the equipment installed at no upfront cost and use it for backup power and lower bills.
Resident Bruce Schauer said he enrolled as soon as he got the chance, a decision that affects the four generations of people living in his home. As Marketplace reported, the Ann Arbor Sustainable Energy Utility is putting rooftop solar panels and batteries on homes in Bryant.
Power interruptions have been a familiar problem for Schauer’s family. Schauer told Marketplace that, “About a year ago, we had a blackout here, and I lost a freezer full of meat and a refrigerator full of meat.” During a later two-day outage tied to a summer heat wave, the home’s battery kept the power on, protecting refrigerated medicine and food.
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April Adkins, Bruce’s granddaughter, told the outlet that “our medicine was saved. Our food was saved. It was a godsend. It was amazing.”
The program’s setup is not based on ownership. The city retains ownership of the equipment, while participating households pay a service fee of about $600 per year. Marketplace also reported that most of the residents enrolled in the program are low-income, and many are considered energy-burdened, meaning utility bills can consume as much as a third of household income.
Yet, Shoshannah Lenski, executive director of the Ann Arbor Sustainable Energy Utility, said that this model still lowers electric bills by roughly $700 to $1,000 annually, per Marketplace, making it financially worthwhile and helpful when the power does go out.
For homeowners outside Ann Arbor, going solar is one of the best ways to save money on home energy. You can explore EnergySage to get free solar installation estimates and compare quotes. Those who do save up to $10,000 on their solar projects.
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Want to go solar but not sure who to trust? EnergySage has your back with free and transparent quotes from fully vetted providers that can help you save as much as $10k on installation.
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Beyond lowering costs, neighborhood solar and battery systems are helping homes stay powered during storms or larger grid failures while also reducing pressure on the broader electric system.
Adding battery storage to a solar setup is one of the best ways to protect your home during outages, save money on energy, and go off-grid. It can also keep essentials like refrigerators, lights, and medical supplies running when the wider grid fails. 
Homeowners can also explore EnergySage for information about home battery storage options, including competitive installation estimates.
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Enviromena begins works and launches £100,000 community fund at County Durham solar farm – theenergyst.com

Enviromena, the UK-based independent power producer, has begun construction at the 68MWp Longpasture solar farm in County Durham and launched a £100,000 community benefit fund to support local groups and initiatives.
The start of construction at Enviromena’s second largest UK project to date marks a major milestone for Longpasture, which Enviromena acquired from Bluefield Solar and Lightrock Power last summer. Energisation of the project is targeted in Autumn 2027
Once energised Longpasture will become one of the largest operational solar farms in the north of England and will provide homegrown renewable electricity, helping to reduce the UK’s reliance on imported fossil fuels while strengthening energy security. The solar farm is expected to generate enough clean electricity to power around 14,000 homes each year.
In addition, the project features several ecological enhancements creating significant benefits for nature alongside the generation of clean energy.
The £100,000 community benefit fund will be delivered in two parts. £80,000 will be administered by Point North, the official community foundation for County Durham and Tees Valley, through an application process open to local groups. A further £20,000 will support smaller groups and grassroots initiatives, including sports clubs across the North East, with some funding already allocated.
Lee Adams, Chief Commercial Officer at Enviromena, said, “We want the benefits of Longpasture to extend well beyond the clean electricity it will generate and the community fund will provide direct support to organisations and grassroots groups doing important work locally.
“Longpasture will play its part in delivering more homegrown renewable energy, strengthening energy security and supporting the transition to a cleaner energy system, while creating a lasting positive legacy for the community around the site.”
Marius Biedka, Senior Investment Manager at Bluefield, said, “We are delighted to see Bluefield’s commitment to the community fund being brought to life by Enviromena. Successful infrastructure is about more than delivering essential renewable energy assets, it’s also about helping communities thrive. We look forward to seeing the opportunities the fund will create for local organisations, projects and residents.”




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Zelestra first to file renewable project under Colombia's new government – BNamericas

Zelestra first to file renewable project under Colombia’s new government  BNamericas
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Global Standards: How China Leading Solar Light Tower Manufacturer RiteVolt Powers Remote Industrial Sites – EIN News

Global Standards: How China Leading Solar Light Tower Manufacturer RiteVolt Powers Remote Industrial Sites  EIN News
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Quinbrook advances plans for Australia polysilicon plant – PV Tech

Australian investment firm Quinbrook Infrastructure Partners has advanced its plans to develop a polysilicon production facility in the Townsville area of Queensland, Australia.
The company signed a memorandum of understanding (MOU) with the Townsville City Council via its subsidiary, Solquartz, to “advance” the Northern Quartz Campus at the Lansdown Eco-Industrial Precinct. The project will process quarts into “higher value silicon products” for solar PV and semiconductors. The company did not specify the annual production capacity for the site.

The MOU “establishes a pathway to finalise a Project Development and Infrastructure Agreement by the end of the year,” the City of Townsville said. The site is earmarked to be operational by 2030, having been identified as a “Prescribed Project” by the Queensland state government and a “Major Project” by the Australian government, in acknowledgement of its significance to the regional and national economies.
In addition to the planned polysilicon production facility, the Lansdown Eco-Industrial Project will feature a long-duration battery energy storage system (BESS) developed by Quinbrook. The Supernode North BESS is “intended to provide reliable, flexible power to support energy-intensive, low-carbon manufacturing,” the City authority said.
“The Northern Quartz Campus, Supernode North and our renewable energy projects are complementary investments that can help establish Townsville and North Queensland as a hub for energy-intensive advanced manufacturing,” said Quinbrook senior vice president Vignesh Bandi.
“We see a compelling opportunity to combine Queensland’s renewable energy and natural resources to build more of the value chain here at home and manufacture higher-value products for domestic and global markets,” Bandi continued.
Quinbrook first voiced its plans for a polysilicon production facility near Townsville in 2023, having won a council-run tender process that awarded a 200-hectare plot.
Earlier this year, a study from the Australian Renewable Energy Agency (ARENA) said that Australia could establish a 50,000MT annual polysilicon production base with the potential to export to other markets in the next decade. The Australian Silicon (AusSi) Study published in May focused on the Hunter Energy Hub in New South Wales and found that AU$2.5 billion – AU$3.5 billion of capital expenditure could enable a credible facility.
The study relied on a potential growth in demand for non-Chinese polysilicon in the coming years, to meet growing solar PV demand and support supply resilience measures in the US, EU and India. China currently dominates global polysilicon supply and major producers have massive inventories in excess of current demand; however, the report suggests that by 2040 policy changes may result in a shortfall in supply for non-Chinese polysilicon.

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Off-Grid Power Simplified: A Comprehensive Guide from a Reliable Off Grid Solar Trailer Factory, RiteVolt – The National Law Review

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TV maker TCL mulls spinning off photovoltaic business – marketscreener.com

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MPA Completes 780,000 kWh Solar Power System At Singapore’s Marina South Pier – SolarQuarter

MPA Completes 780,000 kWh Solar Power System At Singapore’s Marina South Pier  SolarQuarter
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Beyond Reach Technologies unveils line of large deployable solar arrays – SpaceNews

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Covering the business and politics of space
SALT LAKE CITY — A startup has developed large deployable structures that could enable small satellites to generate large amounts of power.
Beyond Reach Technologies announced Aug. 24 its Flarewing line of rigid deployable structures. Those structures can be used to mount solar panels, enabling satellites to carry large arrays that can be tightly stowed for launch.
The Flarewing-S, the smallest of the three configurations of the product, has dimensions of 1 x 0.25 x 0.08 meters when stowed but deploys to provide a surface area of 30 square meters. That can provide between five and eight kilowatts of power, depending on the type of solar cells used. The largest, Flarewing-L, has dimensions of 6 x 0.29 x 0.13 meters when stowed but deploys to provide a surface area of 625 square meters, generating up to 200 kilowatts of power.
The concept for Flarewing has its roots in a NASA Innovative Advanced Concepts, or NIAC, study that co-founder and Chief Executive Mitch Fogelson worked on while a graduate student at Carnegie Mellon University. The NIAC study examined how to deploy kilometer-scale structures on a single launch.
That study led to the development of a truss design that stows flat but pops up into a triangular shape when deployed. A key aspect of the design is the high stiffness of the deployed structure, which reduces bending modes that can be a problem for pointing accuracy and during maneuvers.
“I think what’s unique about our structure is as it deploys out, it grows and it gets stiffer,” said Pele Collins, co-founder and chief technology officer of the company, in an interview.
The deployable structure, he added, also supports changes in satellite design as companies optimize for SpaceX’s Starship and its slot-shaped payload dispenser. “People are going from building giant boxes to more like the SpaceX Starlink style,” he said.
The deployable structures don’t require composite materials and can be made of aluminum and “a variety of novel joints,” said Fogelson. “We can manufacture at scale and produce at scale to support the hundreds of thousands of satellites that some of these companies are proposing over the next five years.”
Beyond Reach went through the Y Combinator accelerator program earlier this year and generated $350 million in letters of intent for using its structures for power generation and heat dissipation.
“It was everything from orbital data centers and commercial space stations to in-space manufacturing and satellite defense,” he said.
The company, focusing for now on deployable structures for solar arrays, has two contracts with undisclosed customers doing what he called “deeper investigations” into the technology. It has raised a little more than $11 million to date, including a $10 million seed round it announced in July.
Beyond Reach has 14 people working in a 16,000-square-foot facility in Brooklyn, New York. “We have a lot of strong opinions about bringing aerospace to the Northeast and the amazing talent and capabilities that the Northeast offers as a new aerospace hub,” Fogelson said of the company’s decision to locate in New York.
Fogelson and Collins met as undergraduates at the University of Pennsylvania. “What we see a lot, and what I experienced myself, is that if you’re a mechanical engineer and you want to work in aerospace and go to school in the Northeast, you end up having to move west because that’s where the jobs are,” said Collins, who worked at SpaceX for seven years on the Dragon spacecraft’s parachute system before co-founding Beyond Reach.
Basing the company in Brooklyn, they said, is a deliberate effort to help build up a space industry in the region and allow engineers who go to school in the region to stay there after graduation. While that industry is currently small, they said they can tap into an extensive network of machine shops and suppliers in the area to help them. The company is based in Industry City, a manufacturing hub that offers room for significant expansion.
“When we’re thinking about building the biggest structures,” Collins added, “New York City is the place for big structures.”

Jeff Foust writes about space policy, commercial space, and related topics for SpaceNews. He earned a Ph.D. in planetary sciences from the Massachusetts Institute of Technology and a bachelor’s degree with honors in geophysics and planetary science…
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India’s solar ecosystem needs a new playbook for scale, quality, and reliability – pv magazine India

The Indian solar sector is at a crucial juncture. From the rapid pace of scaling up solar capacity, it is now all about sustainability in building a value proposition that offers quality, reliability and longevity. Despite having some of the most ambitious renewable energy targets in the world, the future growth of the Indian solar sector would be about manufacturing prowess, dependable execution and resilient supply chains rather than MWs added per year.
The figures speak for themselves. India has now become the third-largest solar market in the world, adding an unprecedented capacity of 44.6 GW in FY26, taking total installed solar capacity to nearly 150 GW as of March 2026. The government has set a target of 500 GW of non-fossil fuel power by 2030 and of all forms of renewable energy, it is now only solar energy that is going to make the biggest contribution.
India has also emerged as a major solar manufacturing hub. The country has scaled up domestic solar module manufacturing capacity from just 3 GW a decade ago to over 200 GW today, while solar cell manufacturing stands at approximately 32 GW. According to the Approved List of Models and Manufacturers (ALMM), module manufacturing capacity under certification has crossed around 217 GW, supported by PLI funding, basic customs duty, and localisation policy. As of 2025 alone, India has added significant new module and cell manufacturing capacity, with total solar cell capacity projected to rise to around 100 GW and module capacity expected to exceed 165 GW by December 2027.
Such success needs to be appreciated, yet manufacturing capacity alone does not translate into a healthy solar ecosystem. The most difficult part in the solar industry is making sure that all the solar assets installed in recent times will continue to perform optimally for the next 25 years. There is no doubt that price-led procurement has made a big contribution in accelerating the adoption of solar power, but there is too much emphasis on minimizing the upfront cost, thus resulting in poor lifecycle performance of the solar systems.
That is exactly why the next playbook for the industry needs to be focused on quality. Initiatives by the government are moving along these lines. ALMM being expanded to include ingots and wafers apart from modules and cells shows the conscious strategy to add more value domestically, increase traceability, and improve quality all along the manufacturing chain. The requirement of compulsory domestic manufacturing of solar cells from June 2026 is yet another landmark initiative in making the chain self-reliant and resilient.
Quality is not confined only within the factory premises. According to industry estimates, poor installations continue to be one of the major reasons behind sub-standard performance of solar assets. Design flaws, wrong cable size, mounting issues, improper commissioning, and lack of regular maintenance despite high-quality materials can lower plant efficiency. As rooftop solar plants rise in numbers under the PM Surya Ghar scheme, India’s demand for qualified installers, trained technicians, and standard EPC services will rise manifold.
It has become equally important from the perspective of the investor as well. In today’s world, financial companies have started looking at projects not on the basis of project cost but the long-term energy generation capacity, operational reliability, and guarantee-based bankability. There is a demand for increased transparency through digital monitoring technologies which can help track energy generation, identify performance deterioration, and provide predictive maintenance.
Thus, digitalisation emerges as the new frontier of competition in the solar industry. The use of artificial intelligence (AI) in monitoring, remote diagnostics, predictive maintenance, and intelligent asset management can increase the plant availability and reduce operation costs. Those companies which will be able to leverage their high-quality hardware with life cycle management through data will build more trust and profits among the customers.
Another crucial aspect needing urgent attention is the upstream manufacturing process. Although module manufacturing has scaled up rapidly, yet India still depends on imports for vital inputs like polysilicon, wafers, and certain specialized parts. Recent policy decisions to encourage local manufacturing of these products are highly significant – both from economic as well as national energy security perspectives.
The importance of having a more resilient solar ecosystem cannot be understated, especially in the context of increasing electricity demand in India. India’s peak power demand is set to hit 300 GW, thanks to rapid industrialization, electric vehicles, increased air conditioning demand and growth of data centers. Satisfying this demand in a sustainable manner would need not just an increase in solar capacity, but also a reliable production mechanism backed up by good manufacturing, storage, grid infrastructure and operations.
India has already shown its capability of deploying solar in volumes at an unprecedented rate. What remains to be seen now is whether this development would be based on quality engineering apart from just low-cost advantage. Success in the coming decade will depend upon which companies focus on engineering excellence instead of volume advantage alone.
The nation’s ambition toward clean energy is too big to be gauged simply in terms of gigawatt-hours installed. It needs to be gauged also in terms of uptime, consumer confidence, efficiency, and asset life. While India has succeeded in creating scale in its solar industry, it needs to create trust next. This will change India from being a fast growing solar market into a highly dependable solar ecosystem.

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IND vs SL: Rishabh Pant's 95m monster six damages solar panel on Colombo stadium roof – Watch – The Times of India

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Scatec Q2 revenues reach US$245.3 million, operational solar PV capacity hits 4.5GW – PV Tech

Norwegian independent power producer (IPP) Scatec has reported quarter-on-quarter growth in revenue and operational solar PV capacity in its latest financial results.
The company’s Q2 2026 results include total revenues of US$245.3 million (NOK2.2 billion), an increase from US$176 million in the first quarter of this year, but down from the US$350 million reported in the fourth quarter of last year. Expansion of operational renewable energy capacity has become a priority for the company, which brought online the second and final phase of its flagship Obelisk solar-plus-storage project in Egypt earlier this month, and started commercial operations at solar PV projects in Brazil and Tunisia earlier this year.

As a result, the contribution of the company’s development and construction work to its total revenues has increased considerably, reaching US$132.1 million in the second quarter of this year, almost double the US$74.6 million reported in the first quarter of this year. Development and construction revenues also accounted for more than half of total revenue in the most recent quarter.
The graph above shows how Scatec’s revenue began to improve in the second quarter of this year, as the company’s total operational solar PV and hydropower capacity has increased consistently. In its report accompanying its financial statements, Scatec attributed the growth in revenues to “construction revenues of NOK255 million (US$27.4 million) related to Scatec’s Joint venture in South Africa, the Lyra Energy 255MW Thakadu project”, and that “revenue growth was further supported by new projects commencing operation”.
This increase in the second quarter does not include the additional capacity brought online at the Obelisk project, which will add a further 1.1GW of solar PV capacity to this total.
Scatec also announced today that it has issued a US$107.3 million bond to “refinance Scatec’s most expensive corporate debt”. Between the first and second quarters of this year, the company reduced its gross corporate interest-bearing debt from US$826.4 million to US$686.9 million.
The uptick in operational renewable energy capacity and the strong financial performance from development and construction work means that Scatec has reaffirmed its forecasts made earlier this year. The company expects power production to reach 5.05-5.35TWh for the full year and proportionate earnings from power production to reach US$386.4-418.6 million, both forecasts that were made in the first quarter of this year.
“We delivered a solid second quarter with continued good progress across our construction portfolio and strong financials from our growing asset base,” said Scatec CEO Terje Ilskog. “New projects are contributing meaningfully to production and revenues, and we remain on track to deliver on our full-year targets.”

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