Arunachal to provide solar power to 393 health centres under Energy for Health initiative – indiatodayne.in

Arunachal Pradesh Health and Family Welfare Minister Biyuram Wahge on Wednesday, September 23 inaugurated the state-level launch of the Energy for Health initiative, under which solar power systems will be provided to 393 healthcare centres across the state.
The initiative, implemented in collaboration with the SELCO Foundation, aims to improve the reliability of power supply at public health facilities, particularly in remote and resource-constrained areas.
The inauguration programme was held at the Primary Health Centre (PHC) Itafort in Itanagar and was attended by Commissioner of Health Pawan Kumar Saini and Secretary, Health Department, Vivek H.P.
During the event, Wahge released the photo book ‘Energy for Health – Arunachal Pradesh’ and launched the Saura e-Mitra App, a digital incident management system aimed at strengthening the monitoring and management of incidents related to health facilities.
A Health Facility and Human Resource Mapping System, a web-based application, was also launched during the programme. The system is intended to provide digital mapping of healthcare facilities and human resources across the state.
Dr Harish Hande, Chief Executive Officer of the SELCO Foundation, briefed the gathering on the organisation’s Energy for Health initiative and its work in strengthening energy access for healthcare facilities.
The SELCO Foundation’s Energy for Health programme is a nationwide initiative focused on providing reliable solar energy and energy-efficient medical technology to public health facilities in remote and underserved areas.
Under the programme, decentralised solar photovoltaic systems ranging from 3 kWp to 15 kWp, along with battery backup systems, are installed at healthcare facilities to ensure a more reliable power supply.
The foundation plans to provide solar energy solutions to 25,000 public health facilities across 12 states by the end of 2026. The initiative is expected to strengthen healthcare delivery and climate resilience for more than 170 million people and support over 160,000 frontline health workers.
The programme has been developed in partnership with the Ministry of Health and Family Welfare, state health missions and funding partners, including the IKEA Foundation.
In Arunachal Pradesh, the initiative is expected to support healthcare centres in addressing power-related challenges and improving the availability of essential medical services.
Copyright©2026 Living Media India Limited. For reprint rights: Syndications Today
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California homeowner on NEM 3.0 gets first negative PG&E bill, thanks to August battery exports – The Cool Down

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They pointed to the twice-yearly CA Climate Credit as a probable factor.
Photo Credit: iStock
California’s NEM 3.0 rules have a reputation for making rooftop solar harder to justify on paper, especially when midday power exports bring in relatively little. 
That is why one PG&E customer’s first-ever negative bill sparked attention online. On Reddit’s r/Solar community, they wrote, “It has been 3 years. I am on the Solar NEM 3.0 plan with PG&E. But I saw a negative bill for the FIRST time ever.”
The South Bay homeowner has a 7.8-kilowatt solar system with a 13.5-kilowatt-hour Powerwall+ battery. The original poster said the home uses roughly 14 kilowatt-hours each day on average, while August production came in at about 40 kilowatt-hours per day.
The OP added that their bill turned negative because stored energy from the Powerwall was sent back to the grid during the 6 p.m. to 8 p.m. period in August, while their daytime solar exports to the grid “get me nothing.”
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As the OP put it, the negative bill was “something to celebrate before I pay through the nose for the winter heating.”
One commenter added, “August is the money making month. It’s when the export values are over $1/kWh in certain evening hours.”
Several commenters also said the below-zero bill likely was not driven by exports alone. They pointed to the twice-yearly CA Climate Credit as a probable factor and added that NEM 3.0’s separate delivered and produced credits can make a flashy export rate look simpler than the actual bill math.
The discussion highlighted a core complaint about California’s newer solar billing structure, that extra electricity exported during the day is worth far less than power discharged during a small set of evening hours. Much of the thread focused on batteries as the tool that makes that timing possible.
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A home battery can do more than reduce a utility bill. It can keep key appliances running during outages, help families get through heat waves, and make homes more resilient when the grid is under strain.
And in places with time-based utility rates, batteries can also automate much of the strategy behind when electricity gets used or exported, making ownership lucrative.
For homeowners navigating similar rate plans, the biggest factors are usually system design, battery settings, and when electricity gets used inside the home. A noticeable improvement can come from using more power outside the priciest evening hours and saving stored solar energy for the export period with the strongest payout.
Homeowners can explore EnergySage for information about home battery storage options and solar panel options, including competitive installation estimates.
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With EnergySage’s help, the average person can save up to $10,000 on solar purchases and installations. EnergySage’s solar map also shows the average cost of a home solar panel system on a state-by-state level, along with details on solar panel incentives for each state. 
Other homeowners are asking the same questions about when solar exports pay the most and whether batteries change the equation. 
• A California solar owner found the battery changes everything when PG&E export credits stay low.
• Across the country, homeowners learned net metering rules often decide whether a battery pays off.
• In Massachusetts, rooftop panels and mini-splits left a homeowner thousands of kilowatt-hours ahead on paper.
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The sheep beneath the photovoltaic panels hint at what else a solar park can yield – globaltimes.cn

Illustration: Xia Qing/GT
Solar photovoltaic (PV) products are crucial for the adjustment of energy structure and the green transformation of industries. …
Recent US solar sector bankruptcies have revealed a significant decline in its industrial competitiveness due to trade barriers, …
As of Monday, China’s first zero-carbon desert highway – the longest photovoltaic (PV) demonstration project for irrigation and …

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In 2023, New York farmer Tony Emmi began turning 30 acres of good farmland into a solar field; three year – The Times of India

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L-G Vinai Kumar Saxena approves installation of 500KWp Solar Photovoltaic Plant at NDS Ice Hockey Rink in Leh. – ladakh.gov.in

L-G Vinai Kumar Saxena approves installation of 500KWp Solar Photovoltaic Plant at NDS Ice Hockey Rink in Leh L-G says project will strengthen Ladakh’s green energy goals and support development of world-class winter sports infrastructure.
Leh, May 10: The UT of Ladakh is all set to achieve a unique fusion of renewable energy generation and modern sporting infrastructure, with Lt. Governor, Shri Vinai Kumar Saxena, giving approval for the installation of a solar plant atop the famous Ice-Hockey Rink in Leh.
The 500 KWp on-grid Solar Photovoltaic (SPV) Plant on the rooftop of the NDS Ice Hockey Rink in Leh will be installed at an estimated cost of Rs 2.38 crore. It is a significant step towards promoting renewable energy and sustainable sports infrastructure in Ladakh. The project will be developed under the Special Development Package (SDP) of the Youth Services and Sports Department, UT Ladakh.
The project will serve as a model for integrating renewable energy solutions into public infrastructure projects across the Union Territory. Under the guidance of Lieutenant Governor Shri Vinai Kumar Saxena, efforts are ongoing to actively promote solar energy and other sustainable initiatives in line with its broader objective of environmental protection, clean energy transition and sustainable development in Ladakh.
“The installation of the rooftop solar plant at the NDS Ice Hockey Rink is an important step towards integrating clean energy solutions with modern sports infrastructure. As Ladakh moves towards becoming a carbon-neutral and environmentally sustainable region, such initiatives will help reduce the carbon footprint while promoting green and energy-efficient development. At the same time, the project reflects our commitment to strengthening sports infrastructure and creating world-class facilities for the youth of Ladakh,” said Lieutenant Governor Shri Saxena.
Ladakh, being an ecologically sensitive Himalayan region, requires sustainable and climate-responsive infrastructure development. The installation of the Solar Photovoltaic Plant at the NDS Ice Hockey Rink, apart from harnessing the abundance of sunlight, would also contribute towards reducing carbon emissions and further strengthen Ladakh’s efforts to emerge as a carbon-neutral region.
The initiative forms part of the UT Administration’s broader vision to develop environmentally sustainable and modern infrastructure in Ladakh while reducing dependence on conventional energy sources. The rooftop SPV plant is expected to significantly reduce electricity consumption costs and promote clean energy usage at the state-of-the-art ice hockey facility.
The Ice Hockey Rink at Leh has already emerged as a major venue for national-level winter sporting events and has successfully hosted the prestigious Khelo India Winter Games for three consecutive years. Plans are afoot to make this facility operational round-the-year.
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Ministry of Electronics & Information Technology, Government of India
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Waaree Enters Specialty Gases Market, Targets Semiconductor And Solar Cell Manufacturing – businessworld.in

Waaree Enters Specialty Gases Market, Targets Semiconductor And Solar Cell Manufacturing  businessworld.in
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Achieving efficient optimal power extraction of centralized photovoltaic array by migranting whale algorithm under partial shading conditions – Frontiers

Achieving efficient optimal power extraction of centralized photovoltaic array by migranting whale algorithm under partial shading conditions  Frontiers
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Sterically gated Lewis acid and base pairs enable orthogonal defect passivation in perovskite solar cells – nature.com

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Strategic timing for the decarbonization contributions by China’s photovoltaic manufacturers in global energy transition – Nature

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Intelligent fault detection in photovoltaic systems: sensing modalities, AI methods, generalization and future trends – Frontiers

Intelligent fault detection in photovoltaic systems: sensing modalities, AI methods, generalization and future trends  Frontiers
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Pakistan’s solar revolt – The News Pakistan

Pakistan is witnessing one of the fastest and most unusual energy transitions in the developing world. It is not being led primarily by government policy, public investment or climate targets. Households, farmers and businesses are driving it in response to electricity prices and reliability.
The numbers are extraordinary. According to the International Energy Agency’s September 2026 Electrification Special Report, Pakistan imported about 51GW of solar panels between 2021 and 2025. Installed distributed solar capacity in 2025 is estimated at between 28 and 38GW, with rooftop systems accounting for roughly 80 per cent and residential consumers for around half of installations. Battery imports also rose sharply, from about $120 million in 2022 to nearly $300 million in 2025.
Perhaps the most revealing number has nothing to do with solar. The IEA reports that the median firm in Pakistan experiences around 45 hours without grid electricity every month. That helps explain what has happened.
Pakistan’s solar boom is therefore a consumer response to an electricity system that has become too expensive and, for many users, insufficiently reliable. Consumers are no longer waiting for power-sector reform. They are building their own reliability. The solar revolution is, in that sense, a market verdict on the existing system.
For decades, Pakistan’s electricity debate was dominated by shortages and loadshedding. The response was to add generation capacity through long-term, exorbitantly expensive contracts designed to attract investment when the country
desperately needed power.
The problem has now changed. Pakistan has substantial installed generation capacity, yet electricity remains unaffordable for many households and uncompetitive for much of industry. Circular debt continues to accumulate. Distribution losses, theft and poor recoveries remain serious, while transmission constraints impede efficient dispatch. Consumers ultimately pay through tariffs, taxes or public debt.
Then came a technological shock. Global solar-panel prices fell sharply just as grid tariffs were rising. Businesses discovered that electricity generated on their roofs could cost considerably less than electricity purchased from the grid. Households followed. Farmers began solarising tube wells. Falling battery prices are now allowing consumers to store daytime generation and reduce dependence on the grid after sunset.
Consumers responded to economic incentives much faster than institutions. Solar should therefore not be viewed only through the lens of climate policy. For industry, it is about competitiveness; for households, affordability; and for farmers, greater energy independence.
Pakistan has effectively developed a second electricity system alongside the first: decentralised, privately financed and increasingly independent of the conventional grid. That is a remarkable achievement, but also a serious challenge for policymakers. The electricity system was built on the assumption that utilities would sell increasing volumes of electricity and recover fixed generation, transmission and distribution costs through those sales. Distributed solar has severely disrupted that model.
As consumers generate more electricity themselves, grid sales decline. Fixed costs, however, do not disappear. Capacity payments, transmission and distribution networks, debt servicing and other legacy obligations still have to be financed. This has created a vicious cycle. Higher tariffs make solar more attractive. As more consumers install solar, grid sales fall. Fixed costs then have to be recovered from fewer units sold, putting further pressure on tariffs and making solar and batteries still more attractive.
There is also an equity problem. Consumers most able to install solar and batteries tend to have access to capital. Poorer households and small businesses remain dependent on the grid. Unless the system changes, Pakistan risks creating a two-tier electricity economy: affordable and reliable self-generation for those who can invest, and an increasingly expensive grid carrying legacy costs for those who cannot.
The wrong response would be to blame solar. Consumers did not create circular debt, inefficient DISCOs, transmission bottlenecks, poor recoveries or expensive legacy contracts. They responded rationally to the product offered. Punitive charges, abrupt policy changes or barriers to distributed generation may slow the transition temporarily, but they will not solve the economics that caused consumers to leave the grid. The question must change from how we protect the grid from solar to how we redesign the grid for a solar economy.
The grid remains indispensable. Solar produces electricity when the sun shines, while a modern economy requires electricity around the clock. Industry cannot operate on intermittency, hospitals cannot depend on weather and cities need resilient networks. But the grid of the future cannot operate like the grid of the past.
DISCOs will have to evolve from geographic monopolies that depend on selling more units into modern distribution-system operators managing two-way electricity flows among consumers, generators, batteries and the national grid. That requires smart metering, digital networks, better forecasting, storage and tariffs that reflect the changing value of electricity during the day.
Time-of-use pricing should encourage demand when abundant solar makes electricity cheaper and discourage avoidable consumption during expensive peaks. Batteries should not be seen as another way to leave the grid; properly integrated, they can help balance the system.
Pakistan must also move towards a more competitive electricity market. Large consumers should increasingly be able to purchase electricity through wheeling and the Competitive Trading Bilateral Contract Market rather than remain captive to geographic monopolies. DISCO reform and private-sector participation should be judged by investment, governance and measurable performance, not merely by ownership.
Energy policy should also avoid becoming an ideological contest between solar, hydro, nuclear, coal or gas. Pakistan needs the least-cost, reliable and increasingly indigenous energy mix capable of supplying electricity around the clock while reducing exposure to imported fuels.
If solar and storage can reduce production costs for textiles, engineering, agriculture, IT services and SMEs, that is a competitive advantage Pakistan should capture. The objective should not be to force consumers back into an expensive system but to make the grid valuable enough that they choose to remain connected. A modern grid can provide what individual solar installations cannot easily offer: balancing, backup, reliability, electricity trading and access to power generated elsewhere in the country.
Another remarkable feature is that households and businesses have effectively financed tens of gigawatts of generation – capital the government did not have to borrow, guarantee or add to public debt.
Instead of treating that investment as a threat, Pakistan should regard it as a national asset and redesign the electricity market so it can be productively integrated.
The solar revolt is therefore both an opportunity and a warning. It shows how rapidly consumers can move when technology provides a better alternative, and what happens when institutions adapt more slowly than the people they serve.
The answer is not to resist the revolution, but to redesign the grid, DISCOs, tariffs, regulation and the electricity market around a reality that has already arrived.

The writer is a former managing partner of a leading professional services firm and has done extensive work on governance in the public and private sectors. He tweets/posts @Asad_Ashah

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New Haven turned a landfill that stopped accepting trash more than 20 years ago into a solar farm with over 1,900 panels, enough to generate the equivalent annual electricity use of about 200 homes while bringing the city $72,000 a year in rent – ECOticias.com 'El Periódico Verde'

Home – Energy – New Haven turned a landfill that stopped accepting trash more than 20 years ago into a solar farm with over 1,900 panels, enough to generate the equivalent annual electricity use of about 200 homes while bringing the city $72,000 a year in rent
A landfill in New Haven, Connecticut, stopped accepting trash more than two decades ago, but its working life is not over. More than 1,900 solar panels now occupy the capped site, with expected annual production exceeding 1.4 million kilowatt-hours (roughly the electricity use of 200 homes).
The city also receives $72,000 a year in rent under a 20-year agreement with Greenskies Clean Energy, equivalent to $6,000 a month. The bigger lesson goes beyond electricity, showing how land with limited redevelopment options can become useful again without finding an entirely new site.
The array began sending electricity to the local grid on July 9, 2026, ahead of a July 20 completion celebration. “On July 9th, we flipped the switch,” said Steve Winter, the city’s climate and sustainability director. Greenskies built the installation in less than a year, despite what it described as a “tough winter.”
Despite the setting, the new installation gets its energy from sunlight, not the garbage underneath it. Photovoltaic panels convert sunlight directly into electricity, while the landfill’s buried waste remains beneath its protective cover.
Greenskies operates the installation and sells its electricity to United Illuminating, where it joins the wider grid serving homes and businesses. So the 200-home figure expresses estimated annual production, not a promise of dedicated power lines to 200 selected households. Output changes with daylight and weather, so annual totals should not be mistaken for round-the-clock supply.
For New Haven, the direct financial return comes from leasing the land, not selling the electricity itself. At the reported annual rate, 20 years of rental payments would add up to $1.44 million.
Does that mean everyone’s electric bill will fall? Not necessarily, because rental income for the city and household utility charges are different things. Officials have discussed more predictable energy costs, but the lease payment is not a guaranteed discount for individual customers.
A closed landfill is not just an empty building lot. Its cap helps keep rainwater from entering the buried waste, and solar construction must accommodate drainage, gas management, and environmental monitoring systems.
Guidance from the Environmental Protection Agency describes weighted mounting systems that can hold panels in place without driving foundations through that cap. Think of a sturdy base resting on the surface, although engineers still need to account for wind, settlement, and the weight the cover can safely support.
Even with those options, not every landfill is a good candidate. Site conditions, access to the electrical grid, and the cost of construction and maintenance all influence whether a proposal makes sense. Regular access for inspections and repairs must remain available long after construction crews leave.
For communities trying to add renewable electricity, location matters alongside the equipment. The Department of Energy identifies previously developed sites, including landfills, as opportunities for solar where housing or other uses may be unsuitable.
The EPA also lists protecting open space among the advantages of putting renewable energy on previously used or contaminated properties. In practical terms, that can mean less pressure to develop another piece of land simply to find room for panels.
There is a climate benefit to consider, too, although “clean energy” does not mean an installation has no environmental footprint. Solar panels generate electricity without direct air pollution during operation, but manufacturing their materials still requires energy and resources. Reusing a landfill addresses the land-use part of that footprint, not every impact of making and operating a solar system.
This is already more than a one-city experiment. In its December 2024 tracking report, the EPA identified 332 solar projects on former landfills, a historical snapshot rather than a live count of every installation operating today.
At the July celebration, Greenskies reported that city facilities hosted 4 megawatts of solar capacity, with another 3.5 megawatts in development. Officials were also exploring additional panels at the landfill, although that was a possibility rather than a completed expansion. Earlier collaborations brought solar parking canopies to L.W. Beecher Museum Magnet School and Hill Central School.
For this property, the new use adds electricity and rental income without changing its status as a closed landfill.
The project’s completion press release was published on Greenskies Clean Energy.



ECOnews is the English-language edition of ECOticias.com, focused on environmental and sustainability news for a global audience. It covers Mobility, Energy, Economy, Technology, Science, Environment, and Trending stories, with clear, accessible reporting on the ideas, innovations, and developments shaping a more sustainable future.
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UK study says silicon solar cells could cut satellite power costs by up to 90% – The Cool Down

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“The interesting finding for us was not that silicon is cheaper but where the remaining cost sits.”
Photo Credit: Getty Images
A new study led by the University of Surrey in England suggests one of the best ways to make satellites cheaper may come from a familiar material much closer to home: silicon. 
Researchers estimated that replacing the solar cells now standard in space with newer silicon versions could cut satellite power costs by up to 90% and reduce the amount of solar-cell weight a spacecraft needs by about half, Phys.org reported.
The review in the journal Acta Astronautica found that silicon solar cells could provide a far cheaper option than the triple-junction cells that have long been the norm for spacecraft.
For decades, space hardware has depended on triple-junction cells made with materials such as gallium, indium, and germanium, and those cells cost about $250 to $450 per watt. 
Silicon, by contrast, is priced in the tens of cents per watt. 
As of November 2025, the three main silicon designs — PERC, TOPCon, and heterojunction — averaged $0.275, $0.285, and $0.39 per watt.
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Performance has improved, too. Silicon heterostructure cells have reached 27.8% efficiency, while perovskite/silicon tandems have hit 34.85%.
To test what that could mean in realistic use, the Surrey team modeled two spacecraft setups: one side of a 3U CubeSat and a Micro Sat from Surrey Satellite Technology Limited. 
Even with protective space-qualified glass included, the study found savings of about 85% to 90%.
Silicon has been used in space before. From 1958 to 1977, it was the standard solar-cell material for spacecraft, until gallium arsenide cells took over because they delivered better efficiency and radiation resistance.
What is different now is how far silicon technology has advanced. Today’s designs are much more sophisticated, suggesting that a once-left-behind material could be positioned for a return to orbit.
Lighter, cheaper satellites can ripple through the aerospace sector and beyond. Lower launch mass can free up room for fuel or instruments, while lower hardware costs can make it more affordable for companies and governments to expand services people rely on every day, such as weather forecasting, communications, navigation, and Earth monitoring.
Those services can help cities respond to extreme weather, support agriculture, and improve emergency planning — all while easing the cost pressures that often limit satellite deployment.
The study suggests the next challenge isn’t simply proving that silicon is inexpensive, but figuring out how to shield it in space without adding too much cost and weight.
For silicon arrays, researchers found that the biggest expense comes from the protective coverglass. If engineers can improve radiation tolerance, they may be able to use thinner glass or substrates.
That could create a double benefit: lower costs for satellite operators and lighter spacecraft that are cheaper to launch. For companies building space-based networks or scientific missions, that may open the door to more frequent launches and more affordable systems.
Tommy Richards, a Ph.D. student focused on future space solar cell technology and the review’s first author, discussed the study’s findings.
“The interesting finding for us was not that silicon is cheaper but where the remaining cost sits,” he began. “Once you put silicon cells behind space-qualified glass, the glass is what you are paying for. That changes what we should be working on.” 
“If we can make the cell itself tougher against radiation, we can use thinner glass or substrates, and we cut cost and weight at the same time. It reframes the problem from a materials contest into an engineering one we know how to attack.”
Advanced developments are changing the face of space technology, bringing benefits that can be seen on Earth. 
• NASA and Ascent Solar are testing ultralight solar film for satellites and the space station.
• NASA may be turning perovskite solar cells into a lighter power option for spacecraft.
• At King’s College London, engineers said space-based solar power could supply electricity at continental scale.
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India Has the Sun, But Where Is Its Concentrated Solar Industry? – Saur Energy

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India Has the Sun, But Where Is Its Concentrated Solar Industry? Photograph: (AI)
On the outskirts of Olpad, a coastal village about 30 km from Surat in Gujarat, the problem was not a shortage of water. The sea was right there. What villagers lacked was water they could drink.
The groundwater beneath the village was highly saline, with total dissolved solids (TDS) of around 800 mg/l, and families often depended on water tankers for their daily supply. For a group of four young engineers from Gujarat, this presented a question that was as much about energy as it was about water: could the sun be used to turn seawater into drinking water without depending on the grid?
Few years ago, chemical engineer Yash Tarwadi, then in his early twenties, and three fellow engineers began working on that idea. Their startup, Solnce Technologies, developed Sol-Evo, a solar-thermal desalination system that used concentrated sunlight to generate the heat required to desalinate water. In 2018, the team took the technology out of the laboratory and installed a standalone pilot unit at Olpad.
The concept was relatively simple, but its implications were significant. Instead of relying entirely on grid electricity to run a conventional reverse-osmosis system, the plant used concentrated solar energy as its primary source of heat. The system could process about 1,500 litres of seawater a day and produce potable water — an especially relevant proposition for coastal communities where electricity supply can be unreliable but sunlight is abundant. The usage of Concentrated Solar Project (CSP) for solving this critical problem, hints at the utility of this technology.
The numbers explain why. India’s installed solar capacity crossed 168 GW by August 2026, according to the Ministry of New and Renewable Energy. In the first five months of FY27 alone, the country added nearly 17.8 GW of solar capacity. But behind that extraordinary growth sits a technology that has never quite found its place in India’s energy transition: concentrated solar power, or CSP.
CSP uses mirrors to concentrate direct sunlight and convert it into heat. That heat can either be used directly in an industrial process or stored — often in molten salts or another thermal-storage medium — and subsequently used to generate steam and electricity after the sun has gone down.
That ability to store heat is the reason CSP once looked like the natural companion to solar PV. It is also the reason the technology has refused to disappear.  Yet more than a decade after India made CSP one of the centrepieces of its first National Solar Mission auctions, the technology remains a niche. The contrast is striking.
In August 2026, India had 168.04 GW of solar power capacity. CSP does not appear as a meaningful standalone category in the country’s current solar-capacity statistics. India’s first major CSP programme was supposed to look very different.
In Phase I of the National Solar Mission, more than 60 bids were received for CSP projects and seven projects totalling 470 MW were selected. But the programme did not produce anything close to the scale originally envisaged. A Climate Policy Initiative (CPI) study found that the government had tendered around 500 MW of CSP but that only about 10% of the targeted deployment had been installed at the time of its assessment.
The reasons were technical, financial and, ultimately, economic. But the story becomes more revealing when viewed through what happened both inside and outside India.
Perhaps the clearest warning about India’s solar-thermal journey does not come from an industry conference or a failed private project. It comes from Parliament. Few years back, the Public Accounts Committee presented its 61st Report on “Non-utilisation of Solar Thermal Power Plant”. The committee examined a 1 MW grid-interactive solar thermal power plant established at the National Institute of Solar Energy (NISE) in Gurugram.
The project, developed with IIT Bombay and other partners, had cost about ₹46.26 crore. It was not functioning. The PAC said the expenditure had become “infructuous” and asked MNRE to explore the possibility of reviving the plant at the earliest. The CAG had found that the failure to develop a dedicated workforce capable of operating the plant continuously had contributed to its non-utilisation.
That finding is important because it captures one of India’s recurring problems with emerging energy technologies. The country has often been good at announcing demonstration projects. It has been less successful at turning those demonstrations into functioning commercial ecosystems.
The parliamentary committee itself pointed out that three other similar solar-thermal projects — two in Rajasthan and one in Andhra Pradesh — were operating successfully, suggesting that the technology itself was not necessarily the problem. The question, therefore, was not whether concentrated solar could work. It was whether India could build the ecosystem around it. That question remains unanswered.
The first National Solar Mission experiment was ambitious. Seven projects, using different CSP technologies, were awarded a total of 470 MW through reverse auctions. The projects included parabolic trough and linear Fresnel systems, with individual project sizes ranging from 20 MW to 100 MW.
The problem was that the auction mechanism pushed developers towards very aggressive tariffs at a time when the technology was still unfamiliar in India. The Climate Policy Initiative later found that the average tariff produced through the auction was about 25% below the reference tariff for Phase I CSP. But only developers with strong financial backing, access to public debt and considerable risk appetite were able to make progress. The 100 MW Rajasthan Sun Technique project, for example, benefited from about $280 million in long-term foreign public debt and extensive technology guarantees.
In other words, India succeeded in discovering a low theoretical tariff. It did not succeed in creating a commercially repeatable CSP industry.
CSP is not PV. A photovoltaic project can be assembled from standardised modules, inverters, structures and cables, with a relatively straightforward construction cycle. A CSP plant is closer to a conventional power project.
It has a solar field, tracking systems, receivers, heat-transfer systems, steam generation, turbines and, increasingly, thermal storage. Every additional component adds engineering and financing risk. India was trying to learn all of that while simultaneously asking developers to bid aggressively.
The result was delays, financing problems, technology-procurement difficulties and, in several cases, projects that never materialised. A CEEW-NRDC study from the early years of the National Solar Mission had already identified many of these problems. It found that no CSP plant under the programme had been financed on a conventional non-recourse basis; developers struggled to find adequately trained technicians; reliable Direct Normal Irradiance data was inadequate; and heat-transfer-fluid availability was a bottleneck.
The report also warned about another contradiction that remains relevant today: the best CSP locations are often dry regions where water is scarce. Five of the seven National Solar Mission CSP projects were in Rajasthan, and the report noted that their dependence on the Indira Gandhi Canal created a risk to generation because of water-supply shortages.
While India was trying to solve these problems, another solar technology was undergoing a revolution. PV module prices fell. Manufacturing scaled. Utility-scale solar parks became easier to finance. Developers became comfortable with the technology. And tariffs fell to levels that made CSP look increasingly difficult to justify for ordinary daytime electricity.
This is the central economic problem for CSP in India. If the requirement is simply to generate electricity when the sun is shining, PV wins. The CSP argument begins only when the value of heat storage, dispatchability or high-temperature process heat is taken into account. That distinction has become even more important as battery storage has become cheaper.
TERI’s May 2026 consultation on CSP and thermal energy storage brought together government officials, utilities, developers, financial institutions and technology providers. One of the questions raised during the discussion was blunt: with BESS prices falling significantly, why would buyers choose CSP and thermal storage?
That is now the fundamental test for CSP.  But whether what it does is worth paying extra for.
If India wants to understand both the promise and the limits of CSP, it does not have to look far beyond the world’s best-known example. The Noor Ouarzazate complex in Morocco has become synonymous with large-scale concentrated solar.
The complex has around 580 MW of combined capacity, including 360 MW of parabolic-trough CSP, 150 MW of central-tower CSP and 70 MW of PV. Its CSP plants use thermal storage to extend generation beyond daylight hours. Noor was built around a very different institutional model from India’s early CSP programme.
Morocco treated solar thermal as strategic infrastructure. Development banks and international institutions provided large amounts of concessional finance, while the Moroccan solar agency MASEN played a central role in project development.
The World Bank and other institutions were not simply financing a power plant. They were helping build a national solar programme. The result was one of the world’s largest CSP installations. But Noor also provides a warning against romanticising the technology.
The 150 MW Noor III tower plant suffered a major molten-salt storage failure and remained offline for more than a year. It resumed operations in April 2025 after repairs. The plant uses more than 7,400 heliostats and stores heat at temperatures reaching around 565°C.
Reuters reported that the storage problem contributed to a roughly $47 million impact for ACWA Power and raised questions about the technology’s cost and reliability. Morocco’s own next-generation solar programme tells an even more interesting story.
Noor Midelt was initially conceived as a hybrid PV-CSP project. But disputes over the economics and reliability of CSP delayed the project, with Morocco’s energy ministry and grid operator pushing for alternatives involving PV and batteries. Reuters reported that the original $2 billion, 800 MW project had been stalled amid those technology disagreements.
By 2025, the next Noor Midelt projects had shifted towards PV plus battery storage rather than the original PV-CSP configuration. So even Morocco — perhaps the world’s most important CSP laboratory — is asking the same question India is asking. Where does CSP still make economic sense when PV and batteries keep getting cheaper?
This is where India’s less glamorous solar-thermal projects become much more interesting. Take Muni Seva Ashram in Goraj, Gujarat. The institution has been experimenting for years with concentrating solar systems to produce steam for applications including cooking, laundry and other institutional requirements.
This is a completely different proposition from a 100 MW power plant. The solar concentrator is not competing with PV for the lowest electricity tariff. It is replacing a conventional source of heat. That could mean LPG, diesel, electricity or another fuel. Suddenly the economics look different. The same logic appears in India’s solar-cooking experiments.
Janak Palta McGilligan’s work at the Barli Development Institute for Rural Women in Madhya Pradesh has involved training thousands of women in solar cooking and food processing, with hundreds of solar cookers deployed through the programme.
The Brahma Kumaris’ India One solar-thermal plant at Abu Road in Rajasthan provides perhaps the clearest Indian example of CSP being designed around a known energy requirement rather than around an abstract electricity tariff. The 1 MW solar-thermal plant uses hundreds of parabolic dishes and thermal storage to provide energy for the organisation’s large campus. The significance is not its size. It is the business model. The plant has a captive consumer.
There is no need to convince a DISCOM to buy expensive solar electricity simply because it is solar. The energy is produced where it is needed. That model is repeated, in different forms, across India’s solar-thermal installations. And it points towards what may ultimately be the technology’s strongest Indian market.
Maharashtra is beginning to create that market. The emergence of solar-steam tenders in Maharashtra is therefore worth watching. Public agencies have begun procuring Scheffler-based solar steam cooking systems for institutional facilities, including facilities of the State Reserve Police Force.
These are not giant CSP power plants. But they are arguably more important for the industry’s future. A tender creates a customer. A customer creates a performance requirement. A performance requirement creates an O&M market. A growing O&M market creates confidence among lenders and technology providers. And enough installations can eventually create a manufacturing ecosystem. That is precisely what India’s first CSP programme struggled to achieve.
The country’s largest power utility is also testing whether CSP can make sense in the emerging market for firm renewable electricity. NTPC has invited interest in a 50 MW CSP project coupled with thermal energy storage capable of providing eight hours of peak and non-solar-hour generation.
It has also examined a 100 MW renewable round-the-clock configuration combining wind and CSP, with at least 200 MWh of dedicated CSP thermal storage, and another 100 MW configuration using CSP, storage and other renewable sources including PV and wind. This is a fundamentally different proposition from the National Solar Mission auctions. The question is no longer:
“How cheaply can CSP generate solar electricity?” It is: “How much does the grid value renewable electricity that can be dispatched when required?” That is a question India will increasingly have to answer.
Electricity demand is rising rapidly. The IEA expects India’s electricity demand to grow at an average 6.4% a year through 2030, while the share of variable renewables is also expected to increase significantly. As solar and wind penetration rises, the value of flexibility will rise too. The challenge is that CSP is not competing for that market alone.
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Scientists turned a regular camera into a much cheaper solar-panel testing tool – digitaltrends.com

Scientists turned a regular camera into a much cheaper solar-panel testing tool  digitaltrends.com
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Australia's main grid hits 80% renewables on consecutive days, rooftop solar tops half of demand – The Cool Down

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“These records are probably not going to last very long.”
Photo Credit: iStock
For the first time, Australia’s National Electricity Market reached renewable energy levels of 80% for two consecutive days, with rooftop solar supplying over half the demand.
According to The Independent, on Sept. 18 and 19, the National Electricity Market, which serves eastern Australia, South Australia, and the Australian Capital Territory, hit record levels.
On Sept. 18, the grid was at 79.5% renewables around 1:30 p.m. Five-minute readings indicated it reached 80.1%.
Rooftop solar supplied 47.9% of generation, and utility-scale solar added another 22.1%, while brown and black coal accounted for about 20% and gas stayed below 1%. In total, renewables produced 26,316 megawatts, compared with just over 2,000 megawatts from fossil fuels, according to the newspaper.
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On Sept. 19, the Australian Energy Market Operator logged an 80.4% renewable share. For about 30 minutes around lunchtime, rooftop solar met over half of total demand, while most of the remaining supply came from solar and wind farms along with a small amount of hydropower.
“These records are probably not going to last very long; they’re probably going to be broken in the next couple of weeks,” University of New South Wales energy systems researcher Dylan McConnell told The Guardian, as The Independent noted.
For households, going solar is one of the best ways to save money on home energy. Homeowners who want to see what a project might cost can use EnergySage to get free solar installation estimates and compare quotes.
Australia’s Energy Minister Chris Bowen wrote on Facebook that there was “more clean, cheap, sovereign energy powering our homes and businesses than ever before.” That kind of energy mix means less pollution and less exposure to volatile fuel prices.
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Per The Independent, renewables in the National Electricity Market averaged 46.5% in the first quarter of the year, then 42.1% across the three months to June.
Such milestones require continued investment in solar, wind, transmission, and storage. “There’s a long way to go, but expect more and more of these milestones in the future as Labor gets on with the job of the energy transition and delivering real cost of living relief,” Bowen wrote on social media.
For homeowners, EnergySage can help you go solar by letting you curate competitive bids from local installers without exchanging contact information unless you choose to work with one. With EnergySage’s help, the average person can save up to $10,000 on a solar purchase and installation.
Tools such as EnergySage’s solar map, which shows the average cost of a home solar panel system by state and details solar panel incentives in each state, can help homeowners get the best price for rooftop solar panels and access available incentives.
💡Go deep on the latest news and trends shaping the residential solar landscape
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. Batteries can store extra daytime electricity for use after sunset or when the grid goes down. Homeowners can also explore EnergySage for information and installation estimates on home battery storage options.
Australia’s grid records show a clear shift toward renewable energy sources. Here are some more stories that dig into solar.
• In Australia, a battery boom is helping steady an increasingly volatile solar-heavy power market.
• Across Australia, an AI system is unlocking rooftop solar for apartment buildings long left behind.
• In Western Australia, Gold Fields is building its largest solar farm for a major mine.
• In New South Wales, 6,000 sheep are thriving beneath 1 million solar panels.
• Worldwide, wind, solar, and storage costs keep falling as renewable deployment accelerates.
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Australia's main grid hits 80% renewables on consecutive days, rooftop solar tops half of demand – yahoo.com

Australia’s main grid hits 80% renewables on consecutive days, rooftop solar tops half of demand  yahoo.com
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CPS Energy's community solar program is back. Here's how it works. – San Antonio Express-News

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Two men accused of taking copper wire from Halifax County solar farm – witn.com

HALIFAX COUNTY, N.C. (WITN) – Two men were charged with possession of stolen goods/property after about 2,000 feet of copper wire was taken from the solar panels at Roanoke Rapids Solar Farm, according to deputies.
The copper was recovered and returned to the farm.
Halifax County deputies first responded on Tuesday at around 7 a.m., where they reported the theft.
Deputies went back to the scene the next day at around 8 a.m. in response to two men on the property.
Timothy Joyner and Johnny Miller both admitted to the crime after being caught on cameras set up on the property, according to deputies. They were identified by their clothing and tattoos.
Joyner was also charged with breaking and entering, injury to personal property, and larceny. He received no bond.
Miller was also charged with conspiracy and received a $15,000 secured bond.
The two men will appear in court on Sept. 23.
Copyright 2026 WITN. All rights reserved.

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Off-grid homeowner runs propane generator at 38%, learns the inverter may need AC input – Yahoo Tech

Off-grid homeowner runs propane generator at 38%, learns the inverter may need AC input  Yahoo Tech
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Portugal launches tender for new photovoltaic plants – theportugalnews.com

Portugal launches tender for new photovoltaic plants  theportugalnews.com
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China's green drive fuels global shift to clean energy, says expert – globaltimes.cn

Wind turbines and photovoltaic panels in Yancheng, East China’s Jiangsu Province deliver reliable green energy on August 15, 2024. According to data from the National Energy Administration, as of July, China’s installed renewable energy power generation capacity reached 1.65 billion kilowatts, up 25 percent year-on-year. Photo: VCG

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Solar panels and a battery cut energy bills by two thirds – thetimes.com

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Two men accused of taking copper wire from Halifax County solar farm – WBRC

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Homeowner asks if mini splits can come off the panel and run on solar and batteries alone – The Cool Down

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The responses pointed to a different solution that is often simpler and cheaper.
Photo Credit: iStock
On Reddit, a budget-conscious homeowner asked a question that likely sounds familiar to many first-time solar shoppers: If mini-splits account for most of a home’s electricity use, can those units be separated from the main panel and powered only by solar and batteries?
The responses pointed to a different solution that is often simpler and cheaper. Instead of creating a separate setup just for heating and cooling, it may make more sense to install solar that offsets the household’s overall power use.
The original poster said their 1,500-square-foot home relies entirely on mini-splits for heating and cooling and asked, “Question is: how would we take those off of our panel and have them run solely off of solar/battery? Is this even possible?”
While commenters said that kind of arrangement can be built, most described it as less practical and less cost-effective.
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“The solar panels are going to produce whatever they’re going to produce. There’s nothing special about the electricity that goes to the mini-splits versus the rest of the house… Installing a system that only partially offsets your usage is something that is done all the time,” one commenter explained.
Put another way, homeowners can still lower their electric bills with solar without separating out a single appliance or circuit.
For households looking to reduce utility costs, going solar is one of the best ways to save money on home energy, even if the system does not cover every load in the house. You can use EnergySage to get free solar installation estimates and compare quotes.
Solar savings come from lowering total electricity bought from the grid, not from assigning panels to a particular device. If a system covers part of a home’s daily power demand, it can reduce grid purchases no matter which appliances are running.
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Because the homeowner said they live in Maine, several commenters focused on net metering as a major factor. In that grid-tied setup, extra daytime generation can offset power used later, which may reduce the need for a large battery bank.
Battery storage is often one of the most expensive parts of a solar installation. Creating a dedicated off-grid or mini-split-only battery system can mean more equipment, added electrical work, and a longer payoff period than a standard grid-connected system designed to cut the home’s total bill.
For homeowners in a similar situation, a common starting point is to review utility interconnection and net-metering rules and then look closely at actual household electricity use. From there, a reputable installer or electrician can help compare the economics of a smaller grid-tied system, a whole-home backup design, or a battery add-on.
With EnergySage’s help, the average person can save up to $10,000 on solar purchases and installations. EnergySage’s solar map also shows the average cost of a home solar panel system by state, along with details on solar panel incentives for each state. Together, those resources can help homeowners get the best price for rooftop solar panels and access available incentives.
💡Go deep on the latest news and trends shaping the residential solar landscape
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 help keep critical systems running when the grid is down. You can explore EnergySage for information about home battery storage options, including competitive installation estimates.
These stories look at how homeowners are using solar alongside mini-splits, backup batteries, and net metering. They also show what those setups meant for energy bills in practice.
• On Cape Cod, solar paired with mini-splits and net metering left one homeowner 4,100 kWh ahead.
• In Australia, a 20kW solar setup made blackouts invisible and delivered a $545 credit.
• During 90-degree heat, rooftop solar powered whole-house AC and two EVs with energy left over.
• In Connecticut, a mini-split could wipe out 200 gallons of oil.
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.
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Fairfield Township considers $20 million solar farm – latrobebulletinnews.com

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Generally cloudy. High 69F. Winds NNW at 10 to 20 mph..
Rain showers this evening with overcast skies overnight. Low 56F. Winds NNW at 5 to 10 mph. Chance of rain 40%.
Updated: September 27, 2026 @ 12:45 pm
A crowd listens to a presentation about GreenKey Development’s proposed solar project slated for Fairfield Township.
Supervisors Ernie Henderson and Jim Brown, Secretary Carrie Tantlinger, Solicitor Amber Leechalk and Supervisor Paul Altimus meet for a public hearing for GreenKey Development’s upcoming solar farm Tuesday evening. 
GreenKey Development’s lawyer Pete Zittel gives a presentation about a slated solar project for Fairfield Township Tuesday night. 

A crowd listens to a presentation about GreenKey Development’s proposed solar project slated for Fairfield Township.
Supervisors Ernie Henderson and Jim Brown, Secretary Carrie Tantlinger, Solicitor Amber Leechalk and Supervisor Paul Altimus meet for a public hearing for GreenKey Development’s upcoming solar farm Tuesday evening. 
GreenKey Development’s lawyer Pete Zittel gives a presentation about a slated solar project for Fairfield Township Tuesday night. 
Whether powered by coal, gas or solar, energy companies have proposed a plethora of projects in Westmoreland County, and rural Fairfield Township is no exception.
The township supervisors held a Tuesday public hearing with GreenKey Development LLC to garner resident opinions on a proposed 59-acre solar farm. GreenKey Development plans to purchase a 112.7-acre property for the facility from owner Bertha V. Martin. It’s located at Fort Palmer Road and state Route 711.
Solicitor Amber Leechalk said the project still needs approvals and permits, such as one from the Westmoreland County Conservation District. On top of that, a final plan still needs to be formalized before it can be approved, she said.
The project will not cross the supervisors’ desk for a vote until all the approvals and permits are obtained.
Leechalk said the most likely next step will be an executive session for the board to discuss the solar farm.
Real estate exemptions under the Sunshine Act only apply to properties a municipal government itself is leasing or purchasing.
Leechalk did not respond to a Wednesday voicemail asking for an explanation of why the solar farm would be discussed in a closed-door meeting.
The project, named Bertha Solar, will consist of four quadrants of panels. The nearest residential property would be over 300 feet away from the facility.
“Back in 2024, the board of supervisors passed an ordinance, setting rules and regulations for such developments … Now, it’s being tested,” Supervisor Paul Altimus said at the beginning of the two-hour meeting.
GreenKey’s lawyer, Pete Zittel of Pittsburgh-based law firm Babst Calland, said he believes the project aligns with the ordinance. He emceed a presentation to the supervisors and crowd.
The project will include permanently tilted panels that will generate electricity for the grid. The area is buffered by trees, GreenKey’s Pennsylvania Permitting Coordinator Tracy Tackett said.
She also mentioned that it will cost $20 million to build.
The highest point of the panels will be 9 feet off the ground, Civil Engineering Manager Jackson Nickel said. The facility will be surrounded by a fence with wildlife cameras to protect it from vandalism.
The company also developed an emergency management plan it will share with area agencies if the project is approved.
The most workers on-site at a time would be 50 people during construction, Zittel said.
Tackett outlined a decommissioning plan and said GreenKey will pay for it. They would remove all the panels, concrete and gravel, she said. She mentioned that part of the reason solar companies make these plans is to soothe the “bad taste in everyone’s mouths” from oil and gas companies.
“Everything will be restored,” she added.
Tackett also talked about how GreenKey will plant native grass. On other sites, the company has allowed sheep to graze, she said. She said they will consider partnering with local farmers in Fairfield Township if there is interest.
Next, Nickel went over the equipment, which will involve transformers and inverters. The inverters will make the most sound on-site, hovering around 65 decibels up close. This would be similar to the volume of an air conditioner, he said.
Within 120 feet of the inverters, the sound sits at less than 45 decibels, which is about the volume of a running refrigerator.
Nickel said the six-month construction process is set to take place while animals are hibernating so as not to disturb them.
He said developers performed a glare analysis and learned the panels will have similar reflectivity to a pond and that an anti-reflective coating will be added.
GreenKey’s presentation also included copies of an approval letter signed by the county commissioners.
GreenKey previously proposed a solar farm in Unity Township on Charles Houck Road, but the project was rejected by the Zoning Hearing Board.
Nickel said the Fairfield Township project is the first Westmoreland County project to make it to this point.
Tackett said other GreenKey solar sites have gone up in Crawford and Bradford counties.
Residents question solar farm’s impact
Though the meeting didn’t start until 5 p.m. Tuesday, doors opened at 4 p.m. as board Secretary Carrie Tantlinger said Monday she was expecting a larger audience.
About 22 people crowded the meeting hall before the presentation began and chatted with developers. The meeting grew slightly heated between residents and the developers but simmered down by the end.
Residents expressed concern over the environmental impact of the site, noise levels, safety, traffic and aesthetics.
Tackett said she is happy to perform a noise study and will work with the township on managing traffic if necessary, and repair the road after any wear and tear.
Russel Davies, a longtime resident, questioned the purpose of solar farms in general.
“I could call them ‘ugly,’ but I don’t want to go there,” Davies said. “So the life of the project is at least 25 years … how many years into that will you counteract what environmental disasters you’ve created by putting it in?”
Tackett said no environmental disasters will be created. When asked specifically about cancer-causing agents, she said there is a type of metal some solar panels use that can contribute to the development of cancer. However, GreenKey will not be using any of those panels, she said.
“We don’t use any toxic chemicals,” she said.
Sherry Mitchell, who inherited a neighboring property along with her three siblings, suggested GreenKey post the entire presentation online for the public to view.
Tackett agreed, though she initially thought the township did not have a website. Zittel said he would jot down a list of emails where he would share the presentation as well.
Mitchell was mainly concerned about how a solar farm will look from the perspective of her property, which she said she was planning to turn into an agriculture tourism site.
Tackett said the company could likely work with Mitchell to integrate the solar farm as part of the tourism experience.
GreenKey anticipates residents will have some opposition to solar farms, which is why they welcome public feedback, Nickel told the Bulletin after the meeting.
“It’s pretty typical … a lot of it’s just questions,” he said. “A lot of it’s just things [people] have seen online.”
The supervisors are set to meet again publicly on July 9 at 3 p.m. in the township building at 159 Midget Camp Road.
Annabelle Chipps can be reached at achipps@latrobebulletinnews.com.
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Investigation continues following solar farm fire near Medicine Lodge – KWCH

BARBER COUNTY, Kan. (KWCH) – The emergency manager in Barton County provided information surrounding a weekend fire at a solar farm near Medicine Lodge as the investigation into the cause continues.
There were no injuries reported in Saturday afternoon’s fire at the Pixley Solar Facility, and in the immediate aftermath, Barber County Emergency Management reported “no current danger to the environment or human health from the fire.”
The emergency manager said Public Service Company of Oklahoma owns and operates the solar farm.
Copyright 2026 KWCH. All rights reserved. To report a correction or typo, please email news@kwch.com

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Grid and construction problems delay 427MW of new power in South Africa – MyBroadband

Grid and construction problems delay 427MW of new power in South Africa  MyBroadband
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A tipping point in Indian energy – Business Standard

A tipping point in Indian energy  Business Standard
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Vikram Solar retains top PV Brand Tag for second year – manufacturingtodayindia.com

Vikram Solar retains top PV Brand Tag for second year  manufacturingtodayindia.com
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Tatarstan patented a forest fire ground thrower with a hydraulic motor and solar panels – www1.ru

The Tatarstan company "2P Engineering" has patented a forest fire ground thrower that can use solar energy to additionally power the working mechanism. The machine is based on a tractor with a high-torque hydraulic motor installed at the rear.
The hydraulic motor spins a flywheel with milling cutters that dig into the soil and throw soil into the area of a ground fire. The operator can change the working depth of the mechanism with a hydraulic cylinder.
An unusual part of the design is its own solar power plant directly on the tractor. A group of photovoltaic modules equipped with a sun tracking system is placed on the mast around the support. Electricity from the photovoltaic modules enters a system with a battery that powers an additional electric motor.
The main mechanical work is performed by the hydraulic drive, and the electrical system provides it with additional energy. The developers expect this to reduce energy consumption and increase the operating time of the ground thrower.
The first tech

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Ashton Kutcher and Mila Kunis’ KuKu Farms Produces More Electricity Than It Needs – ColombiaOne.com

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Ashton Kutcher and Mila Kunis built their Los Angeles farmhouse around solar power, agriculture and water access, creating a 2.4-hectare (6-acre) property whose solar array produces significantly more electricity than the house requires. Known as KuKu Farms, the compound sits on a hilltop above Beverly Hills and includes a main house, a guesthouse and entertainment barn, and a freestanding barbecue pavilion. Architectural Digest documented the completed property in its June 2021 issue, with Howard Backen as architect and Vicky Charles handling the interiors.
The couple’s approach went beyond installing solar panels. A private well irrigates the land, and during the COVID-19 lockdown they planted and harvested a field of corn on the property. Backen has described soil, food and water as practical considerations in the project’s approach to sustainability and regenerative farming.
Kutcher bought the parcel for US$8 million in 2007, Realtor.com has reported. The couple broke ground on the residence in 2017, and the finished compound includes the main house, a two-story guesthouse, and the pavilion on the six-acre lot.
Architectural Digest describes the project as a five-year undertaking without specifying when that period began. Kutcher and Kunis worked with Backen and Charles from the ground up, beginning with separate Pinterest boards they created to collect design ideas. When they compared them, roughly 90% of the images overlapped, and many of the houses they had selected turned out to be Backen’s own work.
No source reviewed for this article puts a figure on the finished construction cost. The US$8 million figure refers to the land purchase.
The photovoltaic system is the most thoroughly documented part of the project. Panels are concealed above the main house’s expansive porch, and the array generates substantially more power than the property consumes. Municipal codes at the time complicated sharing that surplus beyond the property line, a limitation the homeowners hoped would eventually change.
California Energy Designs lists the residence in its portfolio as an MEP engineering project and credits itself with HVAC and plumbing design. The firm’s project information identifies the home’s systems work alongside the solar installation, while Backen & Backen’s project page describes the residence as powered by a solar array.
The engineering also had to account for the architecture. The entertainment barn has floor-to-ceiling windows on two sides, while the main house uses tall ceilings and extensive glazing. Those features created cooling and airflow requirements that formed part of the system’s design.
The six-acre property also supports agricultural use. Kutcher and Kunis drilled the well to irrigate the land, and the corn they planted during the COVID-19 lockdown was later harvested.
Backen has said the couple approached sustainability through practical concerns involving soil, food and water. The firm’s project description identifies regenerative farming practices among the property’s features.
The available documentation identifies the well as an irrigation source and the cornfield as agricultural production. It does not establish that the property supplies all of the family’s drinking water or food.
Backen designed the compound using reclaimed wood, board-formed concrete and glass. The main house connects to the guesthouse and entertainment barn, while the barbecue pavilion stands separately. The buildings are arranged along a central axis, and landscape design firm L.Z. Design Group worked the grounds around the same layout.
A 10-foot crystal chandelier that Kutcher and Kunis already owned became part of the design process. Kunis told Architectural Digest that they built the barn around the chandelier. Charles later incorporated the fixture into the interiors alongside furnishings carried over from the couple’s previous home.
The documented picture is narrower than a claim of complete off-grid independence. KuKu Farms generates more electricity than the house requires, has its own well for irrigation and has produced food on the property. The available record supports describing the residence as energy self-sufficient, but it does not establish complete independence from outside food or water supplies.
See all the latest news from Colombia and the world at ColombiaOne.com. Contact our newsroom to report an update or send your story, photos and videos. Follow ColombiaOne on Google News, Facebook, Instagram, TikTok and subscribe here to our newsletter.
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Ohio village puts 9,222 solar panels on reservoir, now has 13 times the state's solar per resident – Yahoo

Ohio village puts 9,222 solar panels on reservoir, now has 13 times the state’s solar per resident  Yahoo
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Treasure Global’s Subsidiary Tadaa Technology Expands into – globenewswire.com

 | Source: Treasure Global Inc. Treasure Global Inc.
KUALA LUMPUR, Malaysia, Sept. 22, 2026 (GLOBE NEWSWIRE) — Treasure Global Inc. (NASDAQ: TGL) (“Treasure Global” or the “Company”), a Southeast Asia–anchored technology company focused on AI-powered enterprise solutions and digital transformation, today announced that its subsidiary, Tadaa Technology Sdn Bhd (“Tadaa”), has entered into a strategic partnership with Kainan Sdn Bhd (“Kainan”) to provide AI-enabled technology solutions for a proposed US$367 million solar farm development spanning approximately 1,000 acres with a planned capacity of 360 megawatts (“MW”). The project is intended to supply renewable energy to a data centre under a 25-year power supply arrangement.
The project marks Tadaa’s expansion into large-scale renewable-energy technology and provides a long-term commercial framework for the deployment. Upon full deployment, Tadaa is targeting approximately US$7.3 million in annual technology-related revenue from the project.
Under the partnership, Tadaa will provide the AI-powered digital backbone for the solar farm, integrating IoT-enabled infrastructure, intelligent energy management, real-time performance monitoring, data analytics, predictive maintenance, system integration and secure cloud infrastructure. The technology is intended to support reliable, efficient and data-driven management of renewable-energy generation.
“This initiative represents an important step in extending our AI and technology capabilities into large-scale renewable-energy infrastructure,” said Sam Teo, Acting Chief Executive Officer of Treasure Global. “The 360 MW project, supported by a 25-year power supply arrangement for a data centre, provides Tadaa with an opportunity to establish a strong track record in AI-enabled energy management. As data-centre energy demand and renewable-energy infrastructure continue to grow, we believe intelligent monitoring, analytics and predictive capabilities will become increasingly important in improving asset performance, operational efficiency and the reliability of large-scale renewable-energy infrastructure.”
The project positions Treasure Global within one of the world’s fastest-growing energy markets. Global solar PV capacity increased from approximately 710 GW in 2020 to 1,865 GW by the end of 2024, while global investment in solar PV was expected to reach approximately US$450 billion in 2025, according to the International Energy Agency (“IEA”), underscoring the scale of the market opportunity for technology-enabled solar infrastructure.
Malaysia is also accelerating its renewable-energy transition under the National Energy Transition Roadmap (“NETR”), which targets renewable energy accounting for 40% of installed capacity by 2035 and 70% by 2050. The upcoming Large-Scale Solar 6 (“LSS6”) program is expected to add approximately 2,650 MW of new capacity, highlighting the growing domestic pipeline for renewable-energy technology and energy-management solutions.
The initiative also aligns with the global transition toward cleaner energy infrastructure and growing environmental, social and governance (“ESG”) priorities, while extending Treasure Global’s AI and technology capabilities into a high-growth infrastructure sector.
Treasure Global views the 360 MW project as a potential foundation for further expansion into renewable-energy technology serving energy-intensive infrastructure. The Company intends to leverage the deployment as a reference for future solar, data-centre energy and clean-energy opportunities in Malaysia and across Southeast Asia, creating potential for additional recurring technology revenue and long-term growth.
Kainan is a Malaysia-based renewable energy company established in 2007, specializing in the development of solar energy projects and participating in Malaysia’s Corporate Renewable Energy Supply Scheme (CRESS).
About Treasure Global:
Treasure Global is a Malaysia-based technology solutions provider specializing in innovative platforms that drive digital transformation in retail and services. The Company’s flagship product is the ZCITY Super App, which integrates e-payment solutions with customer loyalty rewards to create a seamless online-to-offline user experience. As of March 31, 2026, ZCITY has attracted 2.71 million registered users, positioning Treasure Global as a key player in Malaysia’s digital economy. Treasure Global continuously leverages cutting-edge technologies, including artificial intelligence and data analytics, to enhance its platform’s capabilities across e-commerce, fintech, and other verticals.
Visit treasureglobal.org for more information.
Forward-Looking Statements
This press release contains forward-looking statements within the meaning of Section 27A of the Securities Act of 1933, as amended, and Section 21E of the Securities Exchange Act of 1934, as amended. These statements reflect the Company’s current expectations, assumptions, and projections about future events and are subject to risks and uncertainties that could cause actual results to differ materially from those described in the forward-looking statements. Forward-looking statements typically include terminology such as “anticipates,” “believes,” “expects,” “intends,” “may,” “plans,” “projects,” “seeks,” “should,” “will,” or similar expressions.
Factors that could cause actual results to differ materially include, without limitation, the development and completion of the proposed solar project; achievement of the planned 360 MW capacity; performance and duration of the contemplated power supply arrangement; Tadaa’s ability to deploy and commercialize its AI-enabled technology solutions; achievement of targeted annual revenue; project financing and execution; regulatory and permitting requirements; technology performance; data-centre power demand; cybersecurity and data privacy risks; changes in renewable-energy policies; and broader economic and energy-market conditions.
The forward-looking statements in this press release speak only as of the date hereof. The Company assumes no obligation to update or revise any forward-looking statements, whether as a result of new information, future events, or otherwise, except as required by law.
CONTACT
Investor and media contact:
Investor Relations Team
Treasure Global
ir_us@treasureglobal.org
KUALA LUMPUR, Malaysia, Sept. 16, 2026 (GLOBE NEWSWIRE) — Treasure Global Inc. (NASDAQ: TGL) (“Treasure Global” or the “Company”), a Southeast Asia–anchored technology company focused on AI-powered…
KUALA LUMPUR, Malaysia, Aug. 19, 2026 (GLOBE NEWSWIRE) — Treasure Global Inc. (NASDAQ: TGL) (“Treasure Global” or the “Company”), a Southeast Asia–anchored technology company focused on AI-powered…

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Shopper clicks 70%-off Calpak search result, then spots '.it' URL after $2,000 in charges – The Cool Down

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“If the price looks TOO good to be true, don’t trust it.”
Photo Credit: iStock
A shopper trying to buy from Calpak said a fake storefront nearly drained their debit card after mimicking the brand’s real website and dangling a 70%-off sale.
According to a post on Reddit’s r/Scams forum, the shopper was searching for Calpak, a travelwear company, when they landed on what looked like the brand’s website. The page seemed convincing and promoted a major discount.
The warning signs did not stand out until the checkout process was already underway. The OP said a credit-card verification pop-up appeared, and only then did they realize the address “was not just Calpak.com, it was something else ending in .it.”
The charges followed quickly. They said their debit card was used for two transactions — one for $300 and another for $1,700 — money they described as “literally all the money I had on it.” They locked the card, contacted their bank, and stopped the fraud.
This kind of scam is especially troubling because it closely mirrors normal shopping behaviors: people are encouraged to compare prices and hunt for deals, and scammers can exploit that instinct.
Commenters aimed much of their frustration at paid search placements and platform accountability. One commenter warned, “Never click on the sponsored search result sites at top.” Another described the situation: “Search ads are basically a scammer slot machine now.”
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Others pointed to the financial risk of using a debit card online. A debit card can pull money directly from a checking account, leaving victims scrambling to cover bills or everyday expenses while fraud claims are investigated.
Before checking out, look carefully at the full URL, not just the brand name at the start of the page. Scam domains often add extra words, have unusual endings, or include slight misspellings that are easy to overlook.
Avoid clicking sponsored links when searching for a retailer. Several commenters said they skip ads altogether and scroll until they find the official site instead.
One commenter advised, “never use your debit card as a charge card,” arguing that stronger fraud protections on credit cards can make a major difference when something goes wrong.
If a checkout page throws up unusual prompts, asks for strange verification steps, or simply feels off, it may be best to back out immediately and navigate to the retailer through another trusted source.
The OP wrote, “I know now that it’s a scam, but I only know because I was a victim of it.” As another commenter put it, “If the price looks TOO good to be true, don’t trust it.”
Misleading listings, suspicious sellers, and too-good-to-be-true pricing can trip up shoppers online. These stories cover counterfeit Amazon goods, hidden retail pricing, and deceptive resale practices.
• Amazon shoppers said counterfeit and mislabeled products made routine purchases feel like a gamble.
• Retailers still hide prices behind “Add to Cart” to see rules that frustrate shoppers.
• On Vinted, shoppers said a problematic online trend left them realizing the truth too late.
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Alberta adds $10 fee to new solar panels to fund first-of-its-kind recycling in North America – The Cool Down

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95% of the panels now in use are expected to reach end of life by 2045.
Photo Credit: Getty images
Alberta is rolling out a new fee on solar panels in an effort to address what to do with aging equipment once it reaches the end of its useful life.
An environmental charge of 14 Canadian dollars will be added to each new solar panel supplied in Alberta starting Oct. 1, according to pv magazine.
Panels that have already been installed will not be subject to the fee. Instead, the charge is meant to build funds for collecting, transporting, and recycling solar panels after they are retired.
For homeowners, that added expense appears relatively small next to the cost of a full system. The provincial government said that a standard 20-panel residential installation would incur CA$280 in fees, or less than 1.5% of the installation price, pv magazine reported.
Alberta is pairing the policy with projections about a substantial future waste stream. The province says it has the second-largest installed solar capacity in Canada, and 95% of the panels now in use are expected to reach end of life by 2045, creating up to 72,700 tonnes of material to manage.
Alberta describes the effort as North America’s first solar panel recycling program of its kind.
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As solar adoption rises, end-of-life planning is becoming a bigger part of the clean energy conversation.
Alberta also says solar panels will be barred from landfill sites across the province.
The fee has drawn pushback from some renewable energy advocates, who argue that even modest added costs can send the wrong message to investors and developers.
Alongside the fee, Alberta says it will work with the Alberta Recycling Management Authority and industry partners to grow reuse and recycling capacity over time. The money collected is intended to ensure funding is available as more panels reach the end of their useful lives.
Environment and Protected Areas Minister Grant Hunter said Alberta is putting the system in place to recover valuable materials, attract private investment, and create a new recycling industry.
“Alberta needs stable, predictable policy to attract investment and build the affordable, reliable electricity the province needs. Adding unnecessary costs to new renewable energy projects sends the wrong signal at a time when Alberta needs more electricity in the system,” Radha Rajagopalan, director of policy for Alberta at the Canadian Renewable Energy Association, argued in a LinkedIn post, per pv magazine.
Hunter said: “Alberta has never been afraid to lead. We will not wait until mountains of dead solar panels are piling up in our landfills before acting.”
Other parts of North America are wrestling with many of the same issues.
• In Tennessee, BBB Industries is opening a facility to recycle 125,000 solar modules yearly.
• In Odessa, Texas, a company is expanding solar panel recycling capacity as waste concerns grow.
• In Connecticut and Virginia, advocates are pushing faster home solar permitting to lower homeowner costs.
• In the U.S., a lawsuit is pressing officials to reinstate Solar for All funding.
• A new analysis says solar panels save homeowners about $700 a year.
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Soil protection measures can make agri-photovoltaics more sustainable – Phys.org

Soil protection measures can make agri-photovoltaics more sustainable  Phys.org
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The new Global Reality for PV Module Manufacturers – 2026 – enerdata.net

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The global solar photovoltaic (PV) market entered a more demanding phase in 2025. After four years of rapid expansion, tracked module shipments declined for the first time, falling by 6% to 643 GW. Meanwhile global installations still reached a record 664 GW, lifting cumulative capacity to around 2.9 TW. The supply-side imbalance has deepened. Global nameplate module capacity reached 1,315 GW in 2025 more than double actual shipments, compressing utilisation rates and tightening margins across the industry1.
In Europe, the picture combines slowing deployment with a structural manufacturing gap. Installations edged down slightly in 2025 as cumulative capacity crossed 406 GW, but the more consequential challenge lies further up the value chain. Module production capacity has contracted to 10.8 GW, cell manufacturing remains negligible, and ingot and wafer production has effectively disappeared from the EU. The NZIA’s 30 GW manufacturing target by 2030 remains distant for most value chain segments, worsened by the recent cancellation of several gigafactory projects.
Globally, demand remains robust, but is increasingly shaped by grid constraints, permitting delays and financing conditions rather than unconstrained volume growth. Additionally, 2025 marks a transition from volume-driven growth to a market where utilisation rates, supply chain localisation, and financial resilience define competitive positioning.
After four years of uninterrupted growth, global PV module shipments recorded their first contraction in 2025. The top manufacturers tracked by Enerdata shipped a combined 643 GW, down 6% from 687 GW in 2024, marking a clear turning point for a market that had expanded more than fourfold since 2021 (Fig. 1). This decline should be read with caution. Part of the market remains difficult to track, as many small and private manufacturers do not publicly disclose shipment volumes. In addition, some 2025 installations may have relied on inventories built up in previous years. Even so, the slowdown points to a more constrained deployment environment, shaped by grid congestion, limited storage, permitting delays, financing barriers, curtailment, and supply chain adjustments.Consequently, SolarPower Europe has lowered its Medium Scenario for global cumulative solar PV installations by 2030 from 7.1 TW to 6.6 TW2.
The path leading to this point had been exceptional. Tracked shipments rose from 172 GW in 2021 to 287 GW in 2022 (+67%), then surged to 519 GW in 2023 (+81%) before slowing to 32% growth in 2024. The 2025 contraction does not indicate a collapse in demand, as global solar installations remain historically high. It does, however, suggest that the market is moving from a phase of rapid volume expansion to one marked by saturation, price pressure, and consolidation.
Figure 1: Tracked PV Modules Shipments (40 largest companies WW) – GW
Tracked PV Modules Shipments (40 largest companies WW)
Source: Enerdata’s own calculation *Methodology1
The top five hold their positions; the top 2 players trade positions
The ranking of leading module manufacturers changed little at the top in 2025. LONGi regained first place with 87 GW shipped, the only player among the top four to post growth, up 12% from 78 GW in 2024. JinkoSolar followed closely with 86 GW, down 8% from its 2024 market-leading level of 93 GW. JA Solar (70 GW, -9%) and Trina Solar (67 GW, -13%) completed the top four, both recording sizeable volume declines compared with 2024, when each shipped 77 GW. Taken together, the performance of the top four reflects the broader market contraction and marks a reversal for JinkoSolar and Trina Solar after their strong growth in the previous cycle (Fig. 2).
Among mid-tier players, the picture is more mixed. Canadian Solar was the standout performer, growing shipments 29% to 40 GW, one of the strongest year-on-year gains across the entire tracked field. In contrast, TW Solar (Tongwei) declined 12% to 43 GW, while Astronergy (Chint) fell 8% to 37 GW. DMEGC was another notable outperformer, expanding shipments 47% to 25 GW, while GCL held flat at 25 GW. DAS Solar grew modestly by 4% to 24 GW, and Yingli posted a solid 20% increase to 24 GW.
Figure 2: PV Modules Shipment 2024/2025 & Change %
PV Modules Shipment
Source: Enerdata’s own calculation *Methodology1
First Solar (18 GW, +29%) also outperformed the market. As the only non-Chinese manufacturer in the top fifteen, its growth was supported by the US domestic manufacturing push under the Inflation Reduction Act, even as the policy environment around that support has become less predictable. Although Canadian Solar is registered in Canada, its production facilities are predominantly based in China.
Risen Energy recorded the steepest decline among the tracked companies, with shipments falling 52% to 12 GW from 25 GW in 2024. Aiko recorded strong annual growth of 133% to 15 GW, while HuaYao increased shipments by 16% to 10 GW.
Figure 3 World Top PV Modules Shipment 2025 (GW) & (Share %)
World Top PV Modules Shipment 2025 (GW)
Source: Enerdata’s own calculation *Methodology1
Solar PV deployment reached 2.9 TW in 2025, with the 3 TW milestone approaching ahead of schedule
Global solar PV deployment is now moving at a pace with little historical precedent. It took nearly seven decades, from the first commercialisation of solar cells in 1954, to cross the 1 TW threshold. The second terawatt was added in just two years
In 2025, 664 GW was installed, taking total capacity to around 2.9 TW 2 and bringing the third terawatt within reach. By comparison, 449 GW were installed in 2023, followed by 597 GW in 2024, which has brought cumulative global capacity to 2.2 TW. Annual installation growth continues to slow, from 85% in 2022 to 12% in 2025, a trend expected to continue in the coming years.
Annual growth continues to soften, reaching 12% in 2025 with 664 GW of new additions 
As the market matures and international supply chains continue to face geopolitical shocks, 2026 could bring further deceleration or even a minor contraction. Current scenarios place annual installations between 501 GW (-25%) and 724 GW (+9%) 1. This outlook reflects expectations of a weaker Chinese market, rising curtailment, and continued supply-chain adjustments. Looking further ahead, annual global installations are projected to reach 930 GW by 2029 under the Medium Scenario and could exceed 1.2 TW under the High Scenario. In both cases, a global solar market adding 1 TW per year appears possible before 2030. Cumulatively, these additions would put total solar capacity on track to exceed 6 TW by the end of the decade, strengthening solar PV’s role as the main contributor to the global 11 TW renewable energy target for 2030. 
Figure 4: Global Cumulative Solar PV Market Outlook
Global Cumulative Solar PV Market Outlook
Source: Solar Power Europe 2
However, despite the overall market deceleration projection, the recent blockage of Strait of the Hormuz has hiked demand for solar from China doubling exports in March to 68 GW3. Recent geopolitical developments could alter this outlook, as government are placing greater emphasis on energy security and the diversification away from fossil fuels. out of necessity, sovereignty or change of market dynamics.
Production capacity continues to expand, now reaching 1,315 GW — with utilisation rates telling the real story
In contrast with the shipment contraction, global nameplate PV module production capacity continued to grow in 2025, reaching 1,315 GW, up 27% from 1,039 GW in 2024 (Fig. 5). Since 2021, total nameplate capacity has increased more than fivefold from 250 GW. This expansion, well ahead of actual shipment volumes, is a key driver of the industry’s profitability pressure. With 643 GW shipped against 1,315 GW of available capacity, the aggregate utilisation rate stands at roughly 49%, a level that makes healthy margins difficult to sustain for many manufacturers. 2024 has seen significant price drop in solar panel, drastically lowering the profitability of Chinese companies. Several large companies have recorded negative profits despite increased shipment4.
Figure 5: World Total Nameplate PV Modules Production Capacity (GW)
World Total Nameplate PV Modules Production Capacity
Source: Enerdata’s own calculation *Methodology1
This divergence between capacity and shipments is not new, but it is widening. In 2024, the top manufacturers shipped 687 GW against approximately 1036 GW of combined capacity, resulting in an utilisation rate of around 66%. The drop to roughly 49% in 2025 represents a meaningful operational deterioration, and one that is unevenly distributed across the competitive field. Companies continued investment in overcapacity is an evident symptom of market distortion resulted from substantial subsidies directed to this industrial sector in China. The solar industry in China, which dominates around 90% of the global supply chain, has received subsidies amounting to 3.2% of company revenues, compared to an average of 0.9% across 15 other key industries5.
Nameplate production capacity continues to expand far faster than actual shipment volumes, and the divergence is sharpest among the largest players. LONGi’s 67% utilisation rate against 130 GW of capacity and JinkoSolar’s 57% against 150 GW illustrate the tension between scale investment and commercial absorption. JA Solar (70%) and Trina Solar (74%) maintained relatively tighter alignment between capacity and output — among the more disciplined ratios in the top four. TW Solar (Tongwei) stands out as the most capacity-efficient of the major Chinese manufacturers, running at 87% utilisation with 43 GW shipped against 50 GW of nameplate capacity. Canadian Solar similarly achieved approximately 80% utilisation, as did DAS Solar.
Figure 6 Annual Shipments Compared to Nameplate Production Capacity
Annual Shipments Compared to Nameplate Production Capacity
Source: Enerdata’s own calculation *Methodology1
Among the manufacturers shown in the graph, Hanwha Qcells recorded one of the lowest utilisation rates, at 36%, after shipping 9 GW against 25 GW of nameplate capacity. Some smaller players also show very low utilisation levels, including Ronma at 16% and Runergy at 14%. These figures should be treated with caution and would require further verification, as public data on shipment and production capacity can be incomplete.
At the opposite end, DMEGC exceeded its rated capacity, shipping 25 GW against a nameplate of 21 GW — a utilisation rate above 100% that points to temporary production overshoots, outsourcing production or inventory drawdowns, marking the company as one of the more commercially aggressive smaller players in the current environment. Risen Energy similarly ran at full capacity (12 GW shipped, 12 GW nameplate), suggesting lean but fully committed production. Yingli and HuaYao PV both recorded 50% utilisation, while First Solar’s 58% reflects a manufacturing base still ramping rather than one operating at steady state.
EU solar installations contract for the first time in a decade, with 65.1 GW expected in 2025
After a decade of near-uninterrupted expansion, the European solar market is entering a more turbulent phase, shaped less by new installation records than by the gap between deployment ambition and domestic industrial capacity. The EU is expected to install 65.1 GW of new solar PV capacity in 2025, marking the first annual market contraction in ten years. The slowdown had already begun in 2024, when growth eased sharply to 2.8%, reaching 65.6 GW after three years of exceptional expansion: +38% in 2021, +48% in 2022 and +51% in 2023. The 0.7% decline expected in 2025 shows that while the EU solar boom is still significant, but now under measurable pressure (Fig. 7).
Figure 7: EU Annual Solar PV Installations (GW)
EU Annual Solar PV Installations
Source: Solar Power Europe 6
Yet cumulative progress remains substantial. By year-end 2025, total installed EU solar PV capacity reached 406 GW, placing the bloc 1.6% above its own 400 GW milestone for 2025. This represents a fivefold increase from the 86 GW installed in 2015 and nearly triple the 2020 level of 141 GW, a testament to the speed of the previous expansion cycle. Looking further ahead, only the High Scenario projecting annual installations rising from roughly 70 GW in 2026 to more than 95 GW by 20306 would keep the EU on a trajectory consistent with its 2030 solar targets.
The NZIA sets a 30 GW manufacturing target; the gap between ambition and reality varies sharply by value chain segment
Beyond deployment, Europe’s more structural challenge is manufacturing. The Net-Zero Industry Act (NZIA)7, which entered into force on 29 June 2024, sets a target of at least 30 GW of domestic solar manufacturing capacity by 2030 at each stage of the value chain. This responds directly to the EU’s deep dependence on Chinese suppliers, which continue to dominate global module shipments.
The distance to that 30 GW target differs starkly across the value chain. Solar inverter manufacturing has long surpassed it, reaching 96 GW in 2025, underpinned by a mature European industry with solid footholds in international markets including the US and Australia. Polysilicon production, at 26 GW2, comes closest among manufacturing segments though capacity is concentrated in a single established company, a portion of which serves the semiconductor sector rather than PV.
Figure 8: EU Operational PV Module Manufacturers — Capacity (MW)
EU Operational PV Module Manufacturers
Source: Enerdata’s own calculation *Methodology1
For the rest of the chain, the challenge is considerably steeper. Module production capacity actually contracted this year, falling from 12.6 GW in 2024 to 10.8 GW in 2025, meaning it must roughly triple by 2030 to reach the NZIA threshold2. PV cell manufacturing, still at just 2 GW in 2025, faces an even more daunting trajectory: a 15-fold increase in five years. Cell producers are further constrained by the complete absence of ingot and wafer production within the EU, following the closure of several key players over the last two years — leaving European manufacturers entirely dependent on non-European imports for the critical middle stages of the value chain8.
Module segment sees closures and downward revisions, even as gigafactory projects move forward
The 2025 contraction in EU module capacity reflects both statistical re-estimation and real industrial setbacks. The downward revision is largely linked to a reassessment of RECOM Technologies’ output, previously recorded at 3.2 GW but now understood to have peaked at around 500 MW before the company relocated operations from France to Italy in 2024. The segment also recorded several closures. French manufacturer Photowatt, one of the world’s oldest PV companies, ceased operations in early 2025 after years of losses and an unsuccessful sale process, while Aleo Solar, the German branch of Taiwan-based Sino-American Silicon, stopped module production in March 2025. If the announced module pipeline materialises, adding around 20 GW, EU module manufacturing could cover approximately 60% of the 2030 NZIA target.
Figure 9: EU Closed / Descaled PV Module Manufacturers — Capacity (MW)
EU Closed / Descaled PV Module Manufacturers
Source: Enerdata’s own calculation *Methodology1
The gap between announced capacity and operational factories remains a major uncertainty in Europe’s manufacturing outlook and, as the global context makes clear, closing that gap against a Chinese industry with deeply integrated supply chains, massive production scale, and continued cost advantages will require more than project announcements alone. May 2026 marked the cancellation of Carbon’s gigafactory in France, designed to build a 5 GW integrated solar manufacturing chain, citing insufficient regulatory visibility and investor guarantees9.
These Project closures stand in contrast to a pipeline of announced gigafactory projects that, if realised, could underpin the new module production capacity before 2030. Construction has already begun on DAS Solar’s 3 GW plant in Mandeure, France. Additionally, a Chinese manufacturer establishes European production to navigate trade barriers, a pattern increasingly visible across the industry. Further projects include Holosolis (5 GW) and Voltec (5 GW) in France, MCPV (2.5 GW) and Iberdrola (2.1 GW) in Spain, and FuturaSun’s 1.4 GW FENICE project in Italy. Enel’s 3SUN gigafactory has already scaled module production capacity to 1.8 GW, offering a proof point for European-scale manufacturing viability.
Figure 10: Planned PV Module Gigafactories in Europe — Capacity (MW)
Planned PV Module Gigafactories in Europe
Source: Enerdata’s own calculation *Methodology1
NOTES:
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The Sustainable Economic Opportunity Behind End-of-Life Solar Panels – International Renewable Energy Agency (IRENA)

The Sustainable Economic Opportunity Behind End-of-Life Solar Panels  International Renewable Energy Agency (IRENA)
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Ohio village puts 9,222 solar panels on reservoir, now has 13 times the state's solar per resident – The Cool Down

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“Monroeville had water sitting right there doing one job. Now it does two.”
Photo Credit: D3Energy
Monroeville, Ohio, has expanded solar generation without using additional cropland by placing a new array on its reservoir.
For a village of roughly 1,300 residents, 6 megawatts of new capacity is an unusually large solar presence and could offer a path other small towns may consider.
Electricity is now flowing into Monroeville’s local distribution grid from 9,222 panels mounted across three floating platforms on the village reservoir, according to Interesting Engineering. D3Energy says the installation is Ohio’s largest floating solar project and ranks among the five biggest in the United States.
By occupying about 12 acres of reservoir surface, the project avoids the roughly 30 acres a comparable ground-mounted system would have needed. That tradeoff is notable in Ohio, where a 2021 law has allowed about one-third of the state’s 88 counties to restrict large solar developments.
Want to go solar but not sure who to trust? EnergySage has your back with free and transparent quotes from fully vetted providers in your area.
To get started, just answer a few questions about your home — no phone number required. Within a day or two, EnergySage will email you the best options for your needs, and their expert advisers can help you compare quotes and pick a winner.
For households, going solar is one of the best ways to save money on home energy. If you’re considering rooftop panels, you can use EnergySage to get free solar installation estimates and compare quotes.
The floating array builds on Monroeville’s earlier solar investment: the village has operated a 4-megawatt ground-mounted facility since 2017. With both projects in place, Monroeville now has about 13 times Ohio’s per-person solar capacity.
Other floating solar systems D3Energy has built in Ohio include projects for Del-Co Water in Delaware and for the City of Lima at Twin Lakes Reservoir, bringing the state’s active floating-solar capacity to nearly 10 megawatts.
Gardner Capital owns the Monroeville system and sells its electricity to the village, while D3Energy developed the project and Ohio-based Appalachian Renewable Power handled the contracting. D3Energy said the installation is its third floating solar project in Ohio.
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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.
To get started, just answer a few questions about your home — no phone number required. Within a day or two, EnergySage will email you the best local options for your needs, and their expert advisers can help you compare quotes and pick a winner.
For homeowners who want solar panels to work for them, tools that simplify the solar-buying process can make a major difference. EnergySage’s solar map shows the average cost of a home solar panel system by state, along with details on solar incentives in each state. Together, those resources can help homeowners get the best price for rooftop solar panels and access available incentives.
Using EnergySage is especially valuable because it can help the average person save up to $10,000 on solar purchases and installations. Adding battery storage to a solar setup is one of the best ways to protect your home during outages, save on energy costs, and go off-grid. Homeowners can explore EnergySage for information about home battery storage options, including competitive installation estimates.
“Solar needs space, and in farm country there’s no such thing as spare ground,” said Stetson Tchividjian, managing director of D3Energy. “Monroeville had water sitting right there doing one job. Now it does two.”
Monroeville’s reservoir is part of a much broader push into floating solar. These stories look at similar projects and research on how water-based arrays can expand solar power while conserving land.
💡Go deep on the latest news and trends shaping the residential solar landscape
• Florida is turning highway ponds into floating solar, with room to power 200,000 homes.
• In Oregon, the state’s first floating solar array will power 60 homes and save water.
• Scientists say floating solar is fast becoming cost-competitive across the African continent’s vast reservoirs.
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Ohio village puts 9,222 solar panels on reservoir, now has 13 times the state's solar per resident – Trending Now Sustainable Construction

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Best solar panels for UK homes 2026: Compared by an expert – The Independent

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We compare the best solar panels available in the UK in 2026, from high-efficiency models to panels offering strong warranties and long-term value
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Choosing the best solar panels for your home is about more than just finding the model with the highest efficiency rating or largest output capability. Your roof space, budget, electricity use and warranty length can all make one panel a better fit than another.
With solar panels expected to generate electricity for decades, it’s also worth considering how well a panel retains its output over time, as well as the manufacturer’s reputation and the support available if something goes wrong.
To help you find the right solar panels for your home, we’ve compared some of the leading options available to UK homeowners in 2026, looking at efficiency, output, installed cost, warranties, degradation and suitability for British conditions. Whether you want maximum generation from a small roof, strong long-term value or reliable performance in lower light, these are the models worth considering.
Read more: First look at plug-in solar panels
Are solar panels worth it in the UK? An expert guide on how they work for your home
How much do solar panels cost? UK 2026 prices guide
Solar panel grants UK: How to apply for government funding schemes and what incentives are available?
Are Octopus solar panels worth it? This is what homeowners should know
What sets the Maxeon 7 apart is its Interdigitated Back Contact (IBC) cell design. Unlike conventional panels, all electrical contacts sit behind the cell, reducing resistance and improving durability. This design also makes the panel more resistant to micro-cracks, corrosion, and heat-related efficiency loss – key factors over a 30 to 40 year lifespan.
Degradation performance is among the best we’ve seen. After three decades, the Maxeon 7 is expected to retain more than 90 per cent of its original output, meaning it continues generating meaningful savings long after many panels have declined.
The high output per panel makes it suitable for homes with limited roof space, while its relatively light weight simplifies installation. In real-world use, installers consistently cite reliability and consistency as standout strengths.
Installers and homeowners regularly praise SunPower panels for long-term reliability and low fault rates. Reviews tend to highlight peace of mind, consistent generation, and strong aftercare support when installed through approved partners.
The SunPower Maxeon 7 is best suited to homeowners who want a premium solar panel and are comfortable paying more upfront for long-term certainty. Its main advantage isn’t just high efficiency, but the combination of strong output, low degradation and unusually long warranty cover.
This makes it a strong choice if you expect to stay in your home for many years, have limited roof space or want to maximise lifetime generation from a smaller system. It may be harder to justify if you have modest electricity use or a large, uncomplicated roof where a cheaper panel could still generate enough power.
Ultimately, you should choose the SunPower Maxeon 7 over the other panels in this guide if you want the strongest long-term warranty and are willing to pay more for peace of mind. It is the best fit for homeowners planning to stay in the same property for many years, or those who want a premium panel with excellent output retention. However, if upfront cost is your main concern, DMEGC or LONGi may offer better value.
Read the full SunPower Maxeon 7 solar panel review
The key strength of the DMEGC Infinity panel is its balanced degradation profile. While it doesn’t quite reach the 90 per cent benchmark of the very top performers, retaining more than 87 per cent output after 30 years is still well above the industry average.
Its N-type cells slow long-term performance loss and reduce light-induced degradation, which is a common issue with older P-type panels. Combined with a robust frame, anti-glare coating, and solid heat tolerance, the Infinity is well-suited to long-term UK use.
Installers often highlight the panel’s consistency rather than any single standout metric, which is exactly why it works so well for a wide range of homes.
DMEGC panels tend to be reviewed positively when installed by reputable UK installers, with customers noting steady generation and few post-installation issues. Feedback commonly reflects satisfaction rather than flashiness.
The DMEGC Infinity is a good fit for homeowners who want a reliable, long-lasting panel without moving into the most expensive part of the market. It doesn’t have the highest efficiency figure in this guide, but it performs strongly across the areas that matter for most homes: output, warranty cover, degradation and installed cost.
That makes it a sensible option if you have enough roof space for a standard domestic solar array and want a panel that delivers steady generation over decades. It is less about chasing the highest specification and more about getting a dependable system at a fair price.
You should buy the DMEGC Infinity if you want a strong all-rounder that balances price, performance and long-term durability. It doesn’t beat SunPower on warranty or Perlight on efficiency, but it’s likely to make sense for more households because it offers dependable performance without the highest installed cost. This is the panel to consider if you want long-term value rather than the most premium specification.
Read the full DMEGC Infinity solar panel review
The Hi-MO X10’s standout feature is LONGi’s HPBC 2.0 back-contact technology. This moves the electrical contacts to the rear of the solar cell, leaving more of the front surface free to capture sunlight. The result is a high-efficiency panel with a clean all-black finish and no visible front grid lines.
The Hi-MO X10 offers a 485W output and efficiency of up to 24 per cent, making it a strong option for homeowners who want good generation from a limited amount of roof space. LONGi also highlights the panel’s performance in lower-light conditions, which is useful for UK homes where cloud cover, winter daylight and roof orientation can all affect output.
Long-term performance is another selling point. LONGi states that the panel has one per cent first-year degradation and retains 88.85 per cent of its original output after 30 years, which is a solid long-term guarantee.
Its all-black design also helps it blend into the roof more discreetly than panels with visible silver lines or busbars, which may appeal if you are concerned about how a solar installation will look from the street.
As a budget pick, the LONGi Hi-MO X10’s advantage is that it combines strong efficiency, a major global brand and a long warranty without the same premium positioning as more specialist panels. However, as with any solar panel, the final value will depend on the installed quote rather than the panel specification alone.
The LONGi Hi-MO X10 is best for homeowners who want high efficiency and modern back-contact technology, but do not necessarily want to pay for the most premium panel in the guide. Its 485W output and clean all-black design make it a strong option for homes where roof space, appearance and long-term performance all matter.
It’s also worth considering if you want a panel from a major global manufacturer with a long performance warranty. However, because installed prices can vary by installer and system size, it is important to compare quotes carefully rather than choosing it on specification alone.
The LONGi Hi-MO X10 is the best solar panel to choose from our list if you want high efficiency and modern back-contact technology without moving into premium-panel pricing. It’s a particularly good alternative to SunPower or Perlight if you have limited roof space but still need to keep costs under control. The main trade-off is that the final value will depend heavily on the installed quote, so it’s worth comparing it carefully against DMEGC and Jinko.
The key differentiator here is power density. With both high efficiency and high wattage, the Black Grid produces more electricity per square metre than any other panel listed, which makes it a favourite among many of the best solar panel installers.
Its bifacial construction and reinforced frame improve resilience, while the long 30-year warranty adds confidence. Although degradation is slightly weaker than some rivals, overall lifetime output remains strong due to the high starting efficiency.
Perlight panels are frequently positively mentioned by installers for build quality and output. Consumer reviews tend to reflect satisfaction with the generation rather than brand loyalty.
The Perlight Black Grid is best for homeowners who need to maximize energy generation from their available roof space. Its high efficiency and 500W output mean each panel can contribute more to the overall system size, which is useful if your roof is small, has awkward sections or cannot fit as many panels as you would like.
It may also appeal if your household electricity demand is likely to rise, for example, because you plan to add an electric vehicle charger, a heat pump, or battery storage. In those cases, a higher-output panel can help you build a more capable system without needing more roof area.
If your priority is generating as much electricity as possible from each square metre of roof space, then the Perlight model is the best solar panel for you. It is the strongest option here for efficiency and wattage, which may justify the cost if your roof is small, awkward or partly restricted. However, if you are more focused on brand scale or long-term degradation, SunPower, DMEGC or Aiko may be a better fit.
Read the full Perlight Black Grid solar panel review
The Aiko Neostar delivers high output in a compact, lightweight format, making it ideal for space-constrained rooftops. These panels deliver the best combination of compact design and high power density, with each panel producing 460W at 23 per cent efficiency while maintaining a relatively light and slim build. The panels also boast excellent durability, retaining almost 89 per cent of their output after 30 years.
The panels also feature cell-level partial shade optimisation, which improves energy yield even when parts of the array are shaded. This means a consistent output will be delivered, despite changing skylines or nearby trees.
Durability is another strength. Aiko highlights its micro-crack resistance technology, ensuring panels withstand impacts from hail, branches, or debris. This robustness, coupled with its sleek all-black aesthetic, makes the Neostar both practical and visually appealing.
At just 21.5kg, it’s lighter than many rivals, which reduces strain on roofs and simplifies installation – another advantage for smaller properties.
The Aiko Neostar is best suited to homes where the roof layout is the main challenge. If you have a smaller roof, dormer windows, chimneys, or areas of partial shade, its compact design and shade optimisation can make it easier to build an effective system.
It’s a strong alternative to Perlight for smaller roofs, especially where shade optimisation and aesthetics matter as much as headline efficiency. If your roof has plenty of usable space, DMEGC or LONGi may offer better overall value.
While perhaps less obvious, it’s also a strong choice if appearance is important to you. The all-black design gives the panels a more discreet look than older-style panels with visible silver lines, which may be useful on street-facing roofs or more design-sensitive homes.
Read the full Aiko Neostar solar panel review
The Jinko Tiger is optimised for consistent generation in weak or diffuse light, making it particularly well-suited to the UK climate.
The panels have an advanced N-type cell construction to maintain higher energy output even in weak sunlight, whether early morning, evening, or cloudy UK days, ensuring steadier performance throughout the year. So, for the UK’s famously overcast skies and shorter winter days, the Jinko Tiger is the standout choice. N-type cells are also slower to degrade and are resistant to salt corrosion, making them a great pick for coastal properties.
These panels are also mid-weight and relatively small compared with some other options, making them a practical fit for most UK rooftops.
Jinko is one of the most frequently reviewed solar brands globally, with homeowners often citing their reliability and steady year-round output.
The Jinko Tiger is the best solar panel to buy if you are more concerned about consistent year-round generation, rather than having the highest efficiency figure. It is a practical choice for UK homes where cloud cover and shorter winter days are a concern. It trails some rivals on efficiency and degradation, but it is worth considering if low-light performance and manufacturer scale are your priorities.
It’s also worth considering if you live near the coast, where salt corrosion resistance and long-term durability may matter more than squeezing out the highest possible peak output. For many UK households, steady year-round generation can be just as important as summer performance.
Read the full Jinko Tiger solar panel review
Choosing the best solar panels that UK homeowners can trust means balancing technical performance with real-world experience. To create this guide, we developed a clear scoring system and combined it with expert insight and real consumer feedback.
Every solar panel was rated across five core factors, each on a simple scale of one to five:
Each factor was given equal weight to produce an aggregate score out of 25. Panels that scored consistently high across multiple categories were ranked more favourably than those that excelled in just one area.
Panel
Efficiency
Cost
Wattage
Warranty
Degradation
Total (out of 25)
SunPower Maxeon 7
4
2
5
5
5
21
Perlight Black Grid
5
3
5
4
3
20
LONGi Hi-MO X10
4
2
5
4
4
19
DMEGC Infinity
3
4
4
3
3
17
Aiko Neostar
3
2
4
3
4
16
Jinko Tiger
2
2
3
3
3
13
Numbers only tell part of the story. By combining technical specifications, expert recommendations, and consumer sentiment, our methodology ensures that this guide reflects both the science of solar panels and the lived experience of UK homeowners.
Read more: Verdict on Sunsave solar panels
To understand how solar panels perform beyond their technical specifications, we also reviewed customer feedback from Trustpilot, Google reviews and independent forums, and spoke directly to homeowners who have installed solar panels.
One was Justin Webb, a graphic designer and founder of Judmedia, who had solar panels installed more than two years ago. When comparing systems, he looked for a clear like-for-like specification covering the panels, inverter and battery, long warranties, an MCS-accredited installer, an in-person survey and a single-brand ecosystem that would work together smoothly.
Webb says buyers should think beyond simple payback calculations. “People always talk about ROI with solar panels, but often forget that there’s no ROI on paying your energy bill, or your gas bill, or your mortgage. You just pay it and it’s gone,” he says. “With solar, I’m fixing my energy price instead.”
His advice is to compare quotes carefully, as prices can vary widely, and to ask about finance options, including green home improvement loans from mortgage lenders. He also recommends doing a simple energy audit before choosing a system, from switching to LED bulbs to checking how much power major appliances use. Reducing waste first, he says, can help your solar panels and battery go further.
We interviewed solar installers, including Glow Green and Solar4Good, and considered guidance from industry bodies such as the Microgeneration Certification Scheme (MCS) and the Energy Saving Trust. The clearest takeaway was that the best solar panel is not just the one with the highest efficiency rating; installer reputation, aftercare and real-world durability matter too.
Lloyd Greenfield, founder of Glow Green, says homeowners should prioritise warranty length, manufacturer reputation and cell technology. “There’s a big difference between a panel guaranteed for 30 years and one that only lasts 15,” he says. “You also want a manufacturer with a strong track record, not a new entrant whose panels haven’t been tested in the UK over decades.”
He also warns against choosing on price alone. Lower-wattage panels may reduce the upfront cost, but higher-output models can generate more electricity from the same roof space and deliver better long-term value. The installer matters just as much: Greenfield recommends checking for MCS and NIC accreditations, Trustpilot ratings, insurance-backed deposit protection and whether the company uses the Energy Performance Validation Scheme (EPVS) to validate its performance estimates.
Battery storage is also becoming a bigger part of the decision. Greenfield says more than 95 per cent of Glow Green’s customers now choose a battery alongside their panels, with some later adding a second. His own panel recommendation is Perlight’s Black Grid panel, which he rates for its all-black design, 30-year warranty, bifacial technology and strong reputation.
With dozens of models on the market, the best solar panel often comes down to your priorities. But the best solar panel is the SunPower Maxeon 7, thanks to its exceptional warranty and long-term power production.
Most UK homes are fitted with monocrystalline solar panels, which are typically the most efficient and best suited to limited roof space. You may also come across polycrystalline panels, though these are now less common, and thin-film panels, which tend to be used in more specialist or commercial settings rather than on standard homes.
Plug-in solar panels are becoming readily available in the UK, offering a smaller, more accessible option for balconies, patios and gardens. However, they do not have the same output capacity as a full rooftop solar panel system, so this guide focuses only on rooftop panels designed for whole-home solar installations.
The right option depends on your roof size, budget and how much electricity you want to generate. In most cases, homeowners comparing the best solar panels will be choosing between different types of monocrystalline solar panels, with variations in efficiency, appearance and warranty cover.
Solar panels work by converting sunlight into electricity. Each panel is made up of photovoltaic cells, which generate direct current (DC) electricity when exposed to daylight. An inverter then converts this into alternating current (AC) electricity, which can be used to power your home.
Solar panels can still generate electricity on cloudy days, although output is usually lower than in bright sunlight. Any electricity you don’t use immediately can be stored in a solar battery, if you have one, or exported back to the grid through an export tariff.
For a more detailed explanation, read our full guide to how solar panels work.
Solar panels can be worth it if you own your home, have a suitable roof and expect to stay in the property long enough to benefit from the savings. They can reduce the amount of electricity you need to buy from the grid, and you may be able to earn money by exporting unused electricity through the Smart Export Guarantee or a supplier export tariff.
The payback period will depend on the size and cost of your system, how much electricity you use during the day, whether you add a battery and the export rate you receive. Higher electricity prices generally make solar panels more attractive, but the upfront cost means they are still a long-term investment.
For a fuller breakdown of savings, payback times and key considerations, read our guide to whether solar panels are worth it.
The cost of solar panels in the UK varies depending on the size of the system, the type of panels you choose, the complexity of the installation and whether you add a solar battery. A typical domestic solar panel system can cost several thousand pounds, with larger systems and battery storage increasing the upfront price.
When comparing panels, it’s important to look beyond the panel price alone. Installation, scaffolding, inverter costs, warranties and expected performance over time can all affect the overall value of the system. In this guide, we have listed panel prices as the installed cost per kW to make like-for-like comparisons easier.
Most solar panels are designed to last for 25 years or more, although they will usually continue generating electricity after that point. Their output gradually declines over time, which is known as degradation. This is why many manufacturers provide both a product warranty and a performance warranty.
A product warranty covers defects in the panel itself, while a performance warranty sets out how much of the original output the panel should still produce after a certain number of years. When comparing solar panels, it’s worth checking both the warranty length and the expected degradation rate, as these can affect long-term value.
Yes, brands matter when choosing solar panels. Established Tier-1 manufacturers (such as DMEGC, Jinko, SunPower/Maxeon, and Aiko) are financially stable and more likely to honour 25- to 40-year warranties. While smaller brands can also offer good performance, choosing a reputable manufacturer with a long track record provides extra peace of mind when investing in panels that should last three decades or more.
You may have seen the term ‘Tier-1’ associated with solar panels. It refers to tiers of manufacturers, based on their financial stability and their track record of making high-quality panels. To be seen as a Tier-1 manufacturer, panels should be made in-house, and a track record of at least five years is generally needed. It is a good indicator that a panel maker is of high quality. But it is not the be-all and end-all, since factors that matter little to buyers, such as the quality of a manufacturer’s accounting practices, form part of the criteria. Aiko, Jinko and DMEGC are all Tier-1 firms.
The government currently offers a zero VAT rate on domestic solar installations until at least 2027, cutting upfront costs by 20 per cent. You can also earn money through the Smart Export Guarantee (SEG), which pays you for excess electricity you send to the grid. Some local councils and energy providers run additional schemes, so it’s worth checking regional offers before installation. For more on this, see our guide to the top solar panel grants and funding options.
The Independent has been reporting on green energy and climate matters since it was founded in 1986. Since then, we have written hundreds of reviews and news stories on energy matters, including the best solar installers and various other guides on green power. Jeff Meyer is The Independent’s energy editor. He has written extensively on everything from how you can earn money from solar panels to a guide on whether solar panels are actually worth it. His experience is why you can trust his verdict on the best solar panels. Jeff has conducted extensive research, including consulting industry experts and customers, to gain a thorough understanding of which brands are making the best solar panels.
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Midea Energy debuts broad storage portfolio at Solar & Storage Live UK – pv magazine Global

At Solar & Storage Live UK 2026 in Birmingham, Midea Energy unveiled its energy storage portfolio for the UK market, featuring three key offerings: PowerNexus all-in-one ESS, Omni X standalone ESS, and IEASYENERGY home energy management solution.
The launch comes as the UK residential energy market gains further momentum from supportive policy measures. The government’s Warm Homes Plan continues to support the adoption of technologies such as solar, batteries, and heat pumps, creating a favorable backdrop for home energy solutions. Midea Energy’s portfolio is designed to address these evolving residential energy needs.
PowerNexus offers an all-in-one solution for residential applications, covering single-phase systems of 3–8 kW and 10–12 kW and three-phase systems of 5–15 kW, along with 5 kWh and 7 kWh battery options. The system features a 255 mm slim profile and Red Dot Award-winning minimalist design, allowing it to integrate naturally into residential environments.
While PowerNexus provides an integrated solution, Omni X offers a modular standalone ESS covering a wide power range, with both low- and high-voltage inverter options. Rack-mounted and stackable battery configurations provide flexibility for different household requirements and installation scenarios.
Beyond storage hardware, Midea Energy showcased IEASYENERGY, its intelligent energy management solution. The platform coordinates generation, storage, heating, and charging through a single interface, while AI-driven capabilities analyze consumption patterns and anticipate demand to support more efficient energy use. Midea Energy plans to further integrate the platform with Midea Smart Home, connecting home appliances and energy devices.
Alongside Midea Energy’s storage portfolio, Hiconics, another residential energy storage brand within Midea Energy, made its UK debut at the show. Hiconics showcased its PowerInfi all-in-one ESS and PowerX1 standalone ESS series, broadening Midea Energy’s residential storage offering.
Building on its product showcase, Midea Energy further strengthened its UK market presence by signing a strategic cooperation agreement with Project Better Energy, appointing the company as the exclusive UK distributor for Midea Energy’s product portfolio. The partnership marks a new step in Midea Energy’s UK expansion, supporting the availability of its residential energy solutions to customers across the market.
As part of Midea Group, Midea Energy draws on expertise in home appliances, HVAC, and smart home technologies, supported by 41 R&D centers worldwide. This foundation enables Midea Energy to connect energy storage with broader home energy technologies and accelerate the development of integrated, intelligent, and scalable solutions for the UK market and beyond.
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Daikin unveils air-to-air heat pumps for highly insulated homes – pv magazine Global

Japanese heating system manufacturer Daikin has unveiled a new series of residential air-to-air heat pumps that it says are particularly suitable for highly insulated, airtight homes, where heating and cooling loads can remain low for extended periods once the desired indoor temperature has been reached.
The systems use R32 as the refrigerant, which has a global warming potential (GWP) of 675, and rely on a “small-capacity, high-efficiency compressor” that can reportedly maintain efficient operation under low-load conditions, reducing the energy losses associated with frequent compressor cycling.
Initially launched in the Japanese market, the Ururu Sarara X heat pump line comprises nine models for rooms ranging from six to 26 tatami mats, a Japanese unit of floor area, corresponding to approximately 10 m² to 43 m². Five models operate with a single-phase 100 V power supply and five are available with a 200 V connection, with the 4.0 kW capacity class offered in both configurations.
The manufacturer said the new compressor is particularly suited for spaces where indoor temperatures are less affected by outdoor conditions and the units consequently spend longer periods operating at low output. According to Daikin, the technology can also contribute to meeting the energy-performance requirements of Japan’s GX-oriented and zero-energy home (ZEH) standards.
The heat pumps also feature a new outdoor-temperature-dependent “Heat Boost Control.” The function is activated when outdoor temperatures fall to 2 C or below and increases both heating capacity and airflow.
Daikin said the technology can reduce the time required to reach the set temperature by around 20% compared with its previous-generation system. In tests conducted by the manufacturer with a 4.0 kW model, the system raised the indoor temperature from 10 C to a setpoint of 22 C in approximately 14 minutes at an outdoor temperature of 2 C, compared with around 18 minutes for the previous model.
The company also said the increased airflow expands the floor area reaching temperatures of at least 22 C by approximately 1.2 times compared with the previous-generation system under its specified test conditions.
For cooling operation, Daikin has introduced a low-airflow sleep mode designed to reduce discomfort caused by drafts during the night. In the 2.2 kW to 2.8 kW models, the manufacturer said operating noise remains at 35 dB(A) or below when the function is activated.
Daikin said the Ururu Sarara X range also combines heating and cooling with humidification, dehumidification, ventilation and air purification functions, without providing further technical details.
For comparison, the previous Ururu Sarara X generation has nominal heating capacities ranging from 2.5 kW to 10.6 kW and nominal cooling capacities ranging from 2.2 kW to 9.0 kW. Depending on the model, heating output can reach up to 12.4 kW, while maximum cooling output reaches 9.1 kW.
The indoor units measure 798 mm × 295 mm × 370 mm, while the size and weight of the outdoor units vary according to capacity, from 795 mm × 713 mm × 300 mm to 850 mm × 849 mm × 320 mm.
“With the launch of the 2027 models, we aim to contribute to comfortable living and energy savings by enhancing energy efficiency and comfort in response to changes in housing performance and lifestyles,” Daikin said in a statement,
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The new ESS News magazine is here!
Download your free digital copy today.
The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
Saudi Arabia is accelerating its clean energy transition—join the SunRise Arabia Clean Energy Conference 2026 in Riyadh to explore how solar PV and energy storage are powering its digital economy.
pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand.
Monday, October 26, 2026
10:30 am – 11:30 am CEST, Berlin, Paris, Madrid
Giovedì, 1 ottobre 2026
14:30 – 15:30 CEST, Roma

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Solar PV repowering to account for 23% of new capacity additions by the 2040s – PV Tech

The replacement and expansion of decommissioned solar PV projects will account for 23% of new solar capacity additions by the 2040s, as projects reach the ends of their operational lives and new technological innovations incentivise the replacement of outdated components.
This is according to Wood Mackenzie, which today published a report on the impacts on the clean energy transition of solar and wind project decommissioning. ‘Renewing renewables: The next chapter in the energy transition’ uses wind as the primary example of how projects will come to the ends of their operational lives, and need to be replaced, but many of the trends identified are relevant to the solar industry.

The scale of the challenge is significant; Wood Mackenzie estimates that in the 2040s, projects accounting for more than 2.5TW of wind and solar capacity will reach the ends of their operational lives, forcing project owners to make a decision about the future of the asset.
Indeed, using the example of the European wind industry, the report notes that meeting European Commission deployment targets requires 37GW of new wind additions each year between 2023 and 2030. The industry is already falling short of this target, without even considering the fact that a further 17GW of capacity will be decommissioned in this period; this means that, in effect, Europe must add 39GW a year to reach the 2030 target.
This is illustrated effectively on the graph above, from Wood Mackenzie, which shows how solar and wind decommissioning, in pink, will take a significant volume of generation off the grid, particularly from 2040 onwards. This comes as power demand will continue to grow, meaning that close to 8,000TWh of new generation will be needed by 2050 to account for growing power demand and the reduction in generation from existing solar and wind assets.
Earlier this year, speakers at Solar Media’s Clean Power 2030 Summit said that project developers must “actively” think about end-of-life activities when building an asset, and that simply dismantling a project at the end of its life would be an unwise decision. Instead, asset owners typically aim to revamp a project, the process of replacing parts and components with new versions to restore it to its original output, or repower the project, the process of adding new components to improve the capacity or output of that project.
While one of the speakers at this summer’s event, Joe Miletic, founder and director of UK-based consultancy Solclaris, told PV Tech Premium that concerns about module quality means that some solar asset owners would rather revamp a project than repower it, the Wood Mackenzie report suggests that the rate of technological advancement, particularly for the solar sector, means that repowering could be an attractive option.
The report says that there is “greater technological advancements” in solar than in other renewable energy industries, such as wind; the report estimates that over the past decade, a “new technology” has entered the solar sector every other year.
“In a repowering context, this means solar assets have a shorter operational lifetime than they are designed for, as asset owners look to capitalise on new technological advancements rather than repair existing assets,” reads the report, which was written by Wood Mackenzie’s Søren Lassen, Chris Seiple and Charles Coppins.
Despite the scale of this challenge, the Wood Mackenzie report also notes that the solar PV industry could be well-positioned to capitalise on this need to replace operating capacity, as the speed at which new technological innovations are being deployed means that solar projects that are repowered could see a significant improvement in generation.
The report notes that module efficiencies have increased by 69% between 2005 and 2025, and says that technology is already “available” that could increase cell efficiency by more than 50% by 2045. Similarly, project sites are becoming smaller, with average project sites today “as much as” 30% smaller than projects of the same capacity in 2010.
As a result, the report concludes that decommissioning work will drive “more than 70% of installations” of new renewable energy projects across Europe. However, the report’s authors note that this trend will not be universal, with decommissioning work contributing to juts 1% of new capacity additions in Asia.

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End-of-life management for a circular economy: Solar PV panels – International Renewable Energy Agency (IRENA)

End-of-life management for a circular economy: Solar PV panels  International Renewable Energy Agency (IRENA)
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Decommissioning to drive 23% of solar buildout in the 2040s, says Wood Mackenzie – pv magazine Global

Renewing decommissioned solar and wind projects is set to increase annual installations and improve project economics and affordability, according to analysis by Wood Mackenzie.
The consultancy’s latest report forecasts that more than 2.5 TW of solar and wind projects worldwide will reach their end of design life by 2040.
Site owners must then choose between upgrading existing equipment or decommissioning the plant by removing end of life infrastructure. Decommissioning can pave the way for installing new equipment at the same time, a process often known as repowering, which may reflect more than 20 years of technological innovation since the original build.
Wood Mackenzie’s analysis explains that wind decommissioning is already happening as the wind industry began rapid deployment earlier than the solar industry. However by 2040, solar will have a larger ageing fleet, defined as equipment older than 20 years.
An owner’s decision to decommission solar or wind equipment and install new equipment involves weighing up the net present value of investing in extending the existing project’s lifespan against completely repowering the asset, the report says.
While there are several ways to repower solar and wind, Wood Mackenzie says the most common is the full decommissioning of the original project and the installation of new modules or turbines on the same site, while retaining some of the associated infrastructure.
Decommissioning is expected to drive 23% of solar buildout and 44% of wind buildout in the 2040s, according to figures from the report.
Wood Mackenzie predicts repowering will hit the countries that were early adopters of renewables disproportionately, with decommissioning driving more than 70% of installations in Europe’s established markets in the 2040s, while new markets in Asia could see as little as 1%.
Repowering will also ensure solar and wind remain a growth business for equipment suppliers, the report continues.
Wood Mackenzie notes that global solar and wind capacity will decline this year and says this would continue without repowering, due to factors including slumping policy report, grid integration issues and high levels of decarbonisation in more mature markets.
While annual net additions of solar and wind are expected to decrease gradually through 2050, Wood Mackenzie forecasts that actual equipment sales in 2050 will be more than 60% higher than in 2026 due to the need to replace ageing equipment.
The report says this points towards a new chapter in the energy transition, which it refers to as energy renewal, that is set to drive increased renewables investment for decades.
“In the 2040s, we forecast the rate of growth in global power demand to slow, but solar and wind installations to increase because of decommissioning,” the report says. “In fact, we are expecting the era of renewal to lead to more installations than ever before.”
The report emphasises that this shift should be influencing policy decisions made today.
“If they do not, governments will miss their targets, suppliers will fail to gear up for future demand and owners will overestimate future power prices and potentially miss out on current opportunities,” the report concludes.
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Anza expects at least a 40% spike in solar module prices after Section 232 – pv magazine USA

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The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
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Thursday, October 7, 2026
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California homeowner couldn't install solar, then a Powerwall 3 took on PG&E's peak rates – 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.
“Talk to more installers.”
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After being told a foam roof ruled out rooftop solar, a California homeowner turned to a different energy upgrade: a Tesla Powerwall 3 used to buy electricity at off-peak prices.
According to the homeowner, the battery lets the house rely less on PG&E during expensive hours and also serves as backup when outages hit.
On Reddit, a resident in the San Francisco Bay Area said they skipped solar after three installers told them they couldn’t mount panels on the home’s foam roof. Instead, they opted for a leased Powerwall 3 and use it to store lower-cost power overnight under a time-of-use plan.
The economics, they said, worked because the battery should offset its own lease cost during the summer, with backup power as an added benefit.
“Especially important since the peak rate from 4 to 9 PM is 2 1/2 times the low rate from midnight to 3 PM,” the original poster said.
If you’re curious whether a battery could work for your home, it may be worth exploring EnergySage for 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.
For a smaller-scale option, Pila also offers excellent battery backup options, and its plug-and-play batteries cost a fraction of what a whole-home backup system would.
Home batteries are not only for houses with solar arrays. In places where utilities charge more during late-afternoon and evening peaks, battery storage can shift when electricity is purchased, helping lower bills without requiring major changes to daily routines.
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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?
Not everyone in the thread agreed the roof made solar impossible.
“Talk to more installers. Spray foam roofs are completely compatible with a solar install. That’s probably half of all commercial installations!” one commenter wrote.
The homeowner replied that they had already consulted three installers and preferred that none had attempted a design that could have harmed the roof.
“The battery is the solution today,” one commenter wrote.
More homeowners are weighing batteries even when rooftop solar isn’t in the picture. The articles here cover solar roadblocks, Powerwall growth, battery financing, and incentives that can change the math.
• California homeowners say a major obstacle in the pursuit of solar power is blocking installations nationwide.
• Tesla says it has surpassed half a million installations as Powerwall adoption accelerates worldwide.
• More homeowners can now add home backup batteries without paying upfront, thanks to new financing.
• In Connecticut, a new policy gives home batteries a major advantage as solar caps tighten.
• In Queensland, residents can qualify for thousands off the cost of a Tesla Powerwall.
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.
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Gurgaon to see fresh rooftop solar push; why the 2027 deadline is significant? – The Indian Express

Gurgaon to see fresh rooftop solar push; why the 2027 deadline is significant?  The Indian Express
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