Zinc oxide UV shield cuts heterojunction solar cell degradation and boosts lifetime output by 4.8% – pv magazine Global

Researchers at the Southwest Petroleum University in China have tested zinc oxide (ZnO) thin films to protect silicon heterojunction (HJT) solar cells from UV-induced degradation (UV-ID) and have found that they can increase cumulative power output by 4.8%
“Current approaches to mitigating UV-ID can be broadly divided into two categories. At the material level, encapsulation materials are primarily used to achieve UV cutoff or UV conversion, thereby blocking or converting incident high-energy UV photons. At the device level, structural optimization is employed to enhance UV resistance, although its potential for further improvement is relatively limited,” the research’s corresponding author, Jian Yu, told pv magazine.
“We proposed a protection strategy based on wide-bandgap metal oxides, using ZnO as a representative example. By efficiently absorbing and blocking high-energy UV photons, a physical protective barrier analogous to a ‘sunscreen’ is formed on the cell surface, effectively suppressing UV-ID from a materials perspective,” he went on to say. “Although the ZnO film may temporarily affect the electrical performance of the cell, a comprehensive assessment from the perspective of long-term reliability over the full photovoltaic module lifecycle shows that the resulting UV resistance gain and extended service life can achieve superior overall cost-effectiveness.”
The researchers explained that ZnO is a promising UV-shielding material for solar cells because of its wide bandgap. It can absorb UV photons in the 300–400 nm range, complementing the spectral response of crystalline silicon. This complementary absorption can reduce short-wavelength photon losses while improving the theoretical photovoltaic potential of silicon devices.
The scientists investigated protection strategies: direct deposition of ZnO onto the TCO surface of pre-metallized HJT cells and deposition onto the front glass of finished modules. The ZnO films were prepared by DC magnetron sputtering, with their optical properties controlled through deposition power, pressure, oxygen flow, and substrate temperature.
The films were found to exhibit only about 16–18% transmittance in the UV region while maintaining an average visible transmittance above 90%. They also effectively functioned as a UV-cutoff layer without significantly compromising visible-light transmission, as they absorbed high-energy UV photons before they reach the underlying HJT structure, thereby reducing UV-induced damage.
The research group also ascertained that direct deposition of ZnO on the cells reduced minority-carrier lifetime degradation from 54.9% to 32.6% after exposure to 60 kWh/m² of UV radiation. Although ZnO initially caused a slight performance loss due to parasitic absorption in the visible spectrum, it significantly mitigated long-term UV-induced degradation. After the same UV dose, power conversion efficiency degradation was limited to 3.49%, compared with 5.74% for uncoated cells.
ZnO-coated glass was found to provide even stronger protection, with full-area coverage limiting carrier-lifetime degradation to 24.9% after 40 kWh/m² of UV exposure. After 60 kWh/m², ZnO-covered cells recorded short-circuit current and efficiency degradation of just 1.23% and 2.31%, respectively, compared with 2.75% and 4.72% for cells without ZnO.
Module-level tests further showed that ZnO-coated glass reduced efficiency degradation from 4.99% to 4.12% after 60 kWh/m² of UV exposure. Over a projected 25-year operating period, ZnO-protected modules were estimated to achieve a lower levelized cost of electricity (LCOE) of $0.0262/kWh and 4.8% higher cumulative power generation than conventional modules.

“We argue that wide-bandgap materials represented by ZnO are not limited to HJT cells; through doping modulation, interface engineering, and optimization of film deposition processes, they can be further extended to TOPCon, perovskite, and perovskite-silicon tandem cells, serving as efficient UV-absorbing layers and interfacial stabilization layers with broad application potential,” Yu stated. “With increasingly stringent requirements for long-term weatherability in high-efficiency photovoltaic devices, we believe that wide-bandgap metal oxides will demonstrate extensive application prospects in all mainstream solar cell systems by virtue of its excellent optical properties and interface compatibility.”
The research findings are available in “Suppressing UV-induced degradation of silicon solar cells and modules by UV-cutoff zinc oxide films,” published in Current Applied Physics.
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How a proposed solar farm is dividing rural Kansas county | Exclusive – The Topeka Capital-Journal

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Delaware farmers are turning fields into solar farms that could cut power bills 10% to 20% – The Cool Down

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The installation also increases the area’s power supply as electricity demand grows.
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A farming family in Dover, Delaware, is putting part of its land to work as a community solar farm, creating a new source of electricity that won’t just help the local economy, but also power hundreds of homes.
That shift, which dedicates about a third of the property to solar panels, reflects a wider push to add new power sources quickly and give residents another option for reducing what they pay each month for electricity.
According to NBC Philadelphia, a 32-acre stretch of farmland in Dover now hosts a community solar installation made up of nearly 12,000 panels, enough to provide electricity to about 774 homes.
Nautilus Solar Energy developed the site and says Delmarva Power customers in Delaware can easily take part without needing to install panels on their own properties — the company says the subscription model could lower many participants’ electric bills by 10% to 20%.
Delaware public advocate Jameson Tweedie said additional generation like this is especially important for the region’s power needs.
“We are in a moment where we need a lot of generation, and that may need to come from all different types of generation,” Tweedie said.
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The idea has not won everyone over. As NBC Philadelphia reported, some residents have pushed back on using farmland for solar and said they would rather see commercial projects such as parking lots and retail.
Lower monthly bills are one potential benefit. Community solar can create savings opportunities for people who cannot install rooftop panels because they rent, live in shaded homes, or cannot afford the upfront cost.
The installation also increases the area’s power supply as electricity demand grows. That added local generation could become more valuable if proposed data centers move ahead across the region, since those facilities require enormous amounts of electricity.
There are environmental and health benefits as well. Solar power produces electricity without the air pollution associated with burning fossil fuels, helping reduce the emissions that contribute to climate concerns and respiratory illness.
The debate over land use reflects a challenge playing out in communities across the country: how to balance food production, development, and cleaner energy. In this case, supporters argue that dedicating some acreage to power production offers a practical middle ground.
Nautilus Solar says projects like this can be built relatively fast, and it says the ground beneath the panels is left largely intact. That makes them one possible route for communities trying to add cleaner electricity without waiting years for large new generating stations.
Tweedie said these projects matter not just one by one, but in combination. A growing pipeline of smaller solar sites, he said, can still add up to meaningful support for the grid and for customers facing higher electric costs.
The company also pointed to local economic benefits. In addition to construction, solar developments can lead to more job opportunities for people — which is crucial especially in today’s tough job market. Jobs tied to surveying, studying, maintaining, and landscaping the sites will help keep the project up and running.
For residents, community solar can provide access to cleaner energy without requiring rooftop changes or a major home installation. In Delaware, some Delmarva Power customers may be able to save money simply by subscribing.
“Now, it’s not at the scale of a nuclear plant or a huge combustion facility, but every megawatt that can come online counts,” Tweedie said.
Eric Paul, senior vice president of Nautilus Solar, added: “It does create opportunity.”
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Solar panel fires rise 133% as UK installations increase – International Fire & Safety Journal

The number of solar panel fires attended by UK fire services has increased by 133% over four years, according to new research from global business insurer QBE.
Data obtained through Freedom of Information requests to UK fire services shows that firefighters attended 212 fires involving solar panels in 2025, up from 91 in 2022.
Over the same period, the number of solar panel installations increased by 52%, from 1.27 million to 1.93 million. Installations have since passed two million, reaching 2,047,225 across the UK by May 2026.
Residential buildings accounted for the largest number of incidents, with 102 solar panel fires recorded in 2025, compared with 87 in 2024.
Commercial property fires increased from 33 to 48, representing a 46% rise, while industrial property fires more than doubled from six to 14.
The number of fires spreading beyond the solar installation also increased significantly, rising from 33 in 2022 to 88 in 2025.
Adrian Simmonds, Risk Manager at QBE Insurance, said the pace of solar deployment needed to be matched by stronger attention to installation and maintenance.
“Solar energy is a key component to the UK’s clean energy future and QBE fully supports its rapid expansion, but safety and risk mitigation must be the priority,” he said.
QBE’s research found that DC cabling and connectors were the leading identified cause of solar panel fires in 2025, accounting for 49 incidents, compared with 26 in 2024.
Other reported causes included the solar panel itself, responsible for 36 fires, battery banks with 23 and inverters with 19.
QBE said loose connections, damaged cables and faulty wiring can lead to arc faults and other electrical failures.
The insurer is urging homeowners and businesses to use certified installers, carry out regular inspections and pay particular attention to cabling and connector quality.
QBE also highlighted the growing use of lithium-ion battery storage alongside solar installations.
The insurer warned that battery thermal runaway can result in rapidly developing fires that can be difficult to contain, particularly where storage units are installed in confined or poorly accessible locations.
Simmonds said battery storage installation location was an increasingly important consideration, particularly where equipment is difficult to inspect or access during an emergency.
QBE recommends that battery storage systems are installed in well-ventilated and accessible locations, while solar installations should be inspected following extreme weather events including high winds, hail and flooding.
The insurer also recommends ensuring firefighter switches and arc-fault detection systems are correctly installed and accessible, while avoiding combustible roof coverings or providing suitable fire-resistant separation.
The findings come as the UK continues to expand solar generation, with government policy targeting further growth in commercial and industrial rooftop installations as part of its Clean Power 2030 plans.
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Photovoltaic innovation boosts the efficiency of green energy | DIAMOND Project | Results in Brief | HORIZON – cordis.europa.eu

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Increasing the stability and efficiency of EU-made perovskite photovoltaic technology brings us closer to switching on the clean energy revolution.
Generating electricity with almost no CO2 equivalent emissions, photovoltaic (PV) technology offers an attractive green energy solution. Yet, there is currently very little European solar cell or module production, necessitating imports with their carbon footprints and supply risks. “It has become increasingly difficult to compete with Asian countries, mainly China, to manufacture PV technology. The real barrier to rolling out PV solutions is, however, mostly not technological, but political priorities,” says Uli Würfel, coordinator of the EU-funded DIAMOND(opens in new window) project. DIAMOND’s printable PV architectures – scalable for production – help boost the maturity of European solutions.
Most solar panels are made from silicon, thanks to its abundance and reliability, but perovskites offer easier fabrication and potentially lower costs. Perovskites(opens in new window) for PVs are a class of synthetic crystalline materials made from a range of sources including lead, tin, bromine and chlorine. To increase the durability and efficiency of perovskite solar cells, DIAMOND first identified the best combination of materials for key PV components. The researchers developed perovskite PV devices with conventional metal back electrodes, alongside carbon-based ones. They also investigated the use of lead-tin based absorbers to reduce lead content. Three key innovations were combined to give DIAMOND’s solution more stability than previous PV solar cells. Firstly, a carbon-based back electrode (electrical contacts collecting and transporting photogenerated charge to external circuits), was developed. “These versions improve long-term stability compared to conventional metal electrodes,” adds Würfel from the Fraunhofer Society(opens in new window), the project host. Mitigating the use of toxic lead, sequestration layers were developed from a novel metal organic framework which, rich in chelating groups, immobilise lead ions. Lastly, an innovative design sealed the solar unit. This so-called ‘hermetic encapsulation’ is tricky because the glues typically used to bond the glass solar panels which sandwich the temperature-sensitive materials, increase risks of contamination and heat damage. “We substituted glue with a printed layer of glass frit materials, melted to bond them to the glass plates, offering environmental protection for over 25 years,” explains Würfel.
Testing to compare DIAMOND’s power conversion efficiency (PCE) – how much sunlight is converted into electrical power – with silicon PV, returned encouraging results. The perovskite solar cell with a lead/tin mixed absorber returned a PCE of 25.86 %; while the perovskite solar cell with carbon-based back electrode achieved a PCE of 21.5 % (22.9 % shortly after project completion). With mini solar cell modules (panels), a PCE of 23.28 % was reached on an area of 29 cm2. While a larger module of over 100 cm2 with a carbon-based back electrode processed in air (as opposed to using more expensive inert atmospheres such as nitrogen), realised a PCE of over 18 %. “We were also delighted to record a solar cell PCE rate of just above 27 %, actually beating the world record for crystalline silicon solar cells at the time of proposal submission,” notes Würfel.
The team pursued device designs, components and processes with the lowest CO2 footprints and the highest recycle potential. For example, when fabricating modules, each layer was analysed for potential environmental impact, with a fully recyclable module created as a proof of concept. “Our results reinforce the potential of perovskite PV technology, which when transferred to industry, will create new jobs and reduce dependency on imports of PV panels and ultimately energy itself,” concludes Würfel. Towards this end, the team are now scaling up the size of their PV modules, while continuing to enhance PCEs and operational lifetimes.
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California barely leads Texas in solar power, as nine states drive the US shift – thecooldown.com

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The benefits extend beyond household bills.
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California is still the country’s solar heavyweight, but Texas is much closer behind than many people may expect.
Together, the two states are helping drive a broader shift as solar becomes a bigger part of how Americans power their homes, businesses, and cities.
Nine states in particular are setting the pace, showing that the solar boom is no longer limited to one region or one political playbook.
SEIA’s June 2026 data, cited by BGR, show just how close the race has become.
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Texas has 53,568 megawatts of installed solar capacity, while California leads with 55,510 MW. 
Florida, Arizona, North Carolina, Illinois, Nevada, New York, and Virginia make up the rest of the top nine.
Those nearly neck-and-neck totals come from very different paths. California’s rise has been driven by strong clean-energy policies and broad rooftop-solar adoption, while Texas has built out enormous utility-scale projects even as it remains the country’s top oil producer.
The list also makes clear that states are not growing solar in the same way. Florida has focused heavily on large utility projects, Arizona and North Carolina are expanding agrivoltaics, and Nevada now gets 33.5% of its electricity from solar.
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Going solar is also one of the best ways to save money on home energy. If you’re curious about costs, you can use EnergySage‘s free tools to get quick solar installation estimates and compare quotes.
More solar on the grid can deliver several benefits at once: lower power costs, less pressure on aging infrastructure, and less pollution from coal, oil, and gas.
For households, it can also mean steadier utility bills and, in some places, savings that reach tens of thousands of dollars over time.
Megawatts alone don’t capture the full picture. California has built solar generation alongside storage on a massive scale, while states including Illinois, New York, and Virginia still have comparatively limited battery capacity relative to their solar output.
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Cheap solar power is most abundant during sunny parts of the day, but batteries make it possible to use that energy later — during evenings, heat waves, and outages. That added backup matters even more in areas that regularly deal with extreme weather, from Florida hurricanes to intense Western heat.
The benefits extend beyond household bills. Dual-use solar projects can help farmers, programs can bring cheaper electricity to schools and low-income communities, and cleaner power can support growing industries such as data centers.
There is no single template for how states are moving forward. California is experimenting with canal-top solar through Project Nexus, Arizona is putting panels above crops, North Carolina has grown its community-solar efforts, and New York is supporting rooftop and cooperative projects. Nevada, meanwhile, is adding solar canopies to parking lots.
For consumers, free planning tools can make a big difference. EnergySage’s solar map 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.
Together, those resources can help readers get the best price for rooftop solar panels and access available incentives.
EnergySage’s free services can also take some of the guesswork out of a major purchase. With EnergySage’s help, the average person can 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 money on energy, and go off grid. You can explore EnergySage‘s free tools for information about home battery storage options, including competitive installation estimates.
California may still be number one, but solar is spreading quickly across very different states. As more places pair panels with storage, broader community access, and smarter incentives, cleaner, cheaper power could become easier for far more Americans to tap.
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Berliner Stadtwerke to buy half of 70-MW solar park in Germany – renewablesnow.com

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RFAs: Improved System Design for Innovative PV Applications under EUPI-PV Partnership – fundsforNGOs

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Núñez de Balboa, one of the biggest photovoltaic plant in Europe – iberdrola.com

Núñez de Balboa, one of the biggest photovoltaic plant in Europe  iberdrola.com
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Schneider Electric: Securing More Renewable Solar Energy – Sustainability Magazine

Schneider Electric: Securing More Renewable Solar Energy  Sustainability Magazine
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Francisco Pizarro, the largest photovoltaic plant in Europe – iberdrola.com

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Apollo Power claims certification first for lightweight flexible module – pv magazine India

Israeli lightweight module manufacturer Apollo Power has celebrated a certification first for its new generation of flexible, lightweight solar modules – Panda Plus. The module has secured Class A fire certification from a certified laboratory, an achievement that company CEO Oded Rozenberg said had previously only been achieved by rigid glass modules.
“To the best of our knowledge, nobody has ever made a flexible solar panel that can achieve a Class A fire resistance rating,” Rozenberg told pv magazine. “This is the first time flexible and lightweight solar has achieved this.”
Rozenberg framed the rating as the standout feature of Panda Plus, ahead of a power bump to 320 W across a 2 m² module, which he described as the most durable version the company has produced. The fire performance was achieved through improved materials and a new manufacturing patent that Apollo Power would not disclose, noting only that matching polymer-based modules to the same test regime used for glass panels – including 1,000 hours of damp-heat cycling, accelerated weathering and hail testing – had been very demanding.
Launched in June 2026, Panda+ comes in three formats on the same fully flexible 72-cell (6×12) platform: a white and a black frameless module for adhesive installation, and a framed version for standard racking. The frameless module (AG1206FL) is rated at 320 W ±5%, weighs 6.8 kg ±3% and measures 2,020 × 1,005 × 2.3 mm, with its junction box mounted on the front. The framed module (AG1206F) trades some of that weight saving for rack compatibility: it’s rated at 310 W ±5%, weighs 9.5 kg ±5%  in a 23 mm black-anodized aluminum frame, with dimensions of 2,026 × 1,010 × 23 mm and the junction box moved to the back. Electrically the framed and frameless are close: both use MC4-EVO2 connectors, a 1,000 VDC maximum system voltage and near-identical temperature coefficients (Pmax: -0.363%/°C).
The framed option is a response to customer demand rather than a technical showcase, according to Apollo Power, with some customers requesting a more easily replaceable option that would allow panels to be moved or replaced without disturbing adhesive. Rozenberg did acknowledge the trade-off between a framed, rack-mounted Panda Plus which gives up some of the weight advantage that is a key selling point for the product line, although he said it still remains lighter than a comparable glass panel with mounting hardware. 
Apollo is also working with an unnamed US roofing company on an integrated solar-roofing product that is planned for launched around the RE+ trade show later this year. Rozenberg wouldn’t reveal full details of the launch, but he did tell pv magazine he sees the product type as having great potential for the US market. Those attending the exhibition in Las Vegas in November can expect to see some kind of roof integrated product, and Rozenberg said certifications have already been secured for the module involved.
Residential and commercial rooftops with weight or design constraints are the key market for Apollo, representing most of the company’s sales, however the manufacturer does serve other segments such as the automotive and portable applications markets. These include solar charging systems for trucks and buses, and portable units for defence applications and disaster relief , including drone and battery charging. Apollo has an exclusive European distribution agreement with automotive supplier ZF covering solar systems for buses and trucks, and supplies rollable solar fabric to integrate in Lippert’s awning portfolio, which the company describes as the leading player in the US recreational-vehicle market.
A focus on transport electrification in the United States has also seen Apollo Power launch a lightweight rooftop solar module and charger kit for trucks and buses. Each solar kit distributed as part of the deal will include ApolloMotive flexible panels, PV cables and MPPT charge controller.
The company also announced earlier this year a definitive agreement with ARKO Corp and is in the process of deploying its flexible solar energy solutions to more than 300 ARKO’s US gas stations under a strategic partnership.
Apollo manufactures all of its panels at its Israel facility, which the company put at roughly 200 MW of capacity, while sourcing some raw materials internationally. Distribution runs through tier-one partners such as Lippert and ZF alongside direct sales to large end users – Rozenberg cited Amazon’s European logistics centers as an example of a customer large enough to buy from Apollo directly rather than through a distributor.
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Global South Cooperation Key to Building Resilient Solar PV Supply Chains: Abhinav Mahajan – Energetica India Magazine

At IECE 2026, IB Solar Director and NSEFI Manufacturing Committee Chair Abhinav Mahajan joined global industry and government leaders to discuss how India and the Global South can build resilient solar PV supply chains spanning manufacturing, technology, minerals and deployment.
August 10, 2026. By Mrinmoy Dey

Ashish Kauleshnam, Tata Elxsi on How AI, Digital Engineering, Advancing Sustainable Mobility

Continuous Innovation is Fundamental to RenewSys’ Growth Strategy: Avinash Hiranandani

Tie ALMM Implementation to Domestic Capacity, Not Calendar Deadlines: Sanjeev Aggarwal

Renewables Will Become the Backbone of India’s Grid, Says Wärtsilä’s Archana Bhatnagar

NoPo' Gadhadar Reddy Explains India's Deep-Tech Opportunity in Single-Walled Carbon Nanotubes

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The role of offshore wind and solar PV resources in global low-carbon transition – science.org

The role of offshore wind and solar PV resources in global low-carbon transition  science.org
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Solar stocks shine after Trump extends China tariffs to polysilicon products – CNBC

Solar stocks shine after Trump extends China tariffs to polysilicon products  CNBC
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Bharat’s Rooftop Solar Revolution Hits 50 Lakh Homes. Here’s What’s Driving the Surge – HinduPost

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“India’s Rooftop Solar Revolution Hits 50 Lakh Homes. Here’s What’s Driving the Surge”, Open the magazine, July 04, 2026
“India’s rooftop solar push has entered a new phase of explosive growth.
The PM Surya Ghar: Muft Bijli Yojana has crossed the milestone of 50.06 lakh rooftop solar installations, marking one of the country’s fastest clean-energy rollouts. According to the Ministry of New and Renewable Energy, the programme is now adding nearly one lakh beneficiary households every six days, with July 2026 emerging as its best-performing month since launch.
The numbers highlight just how rapidly rooftop solar adoption has accelerated. More than 5.06 lakh households installed rooftop solar systems in July alone, while daily installations have more than tripled over the past nine months—from just over 5,000 per day in October 2025 to more than 16,300 per day in July 2026…….”
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Michigan Plug-In Solar: 7 Critical Facts That Could Help Cut High Electric Bills – thumbwind.com

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HomeNewsMichigan Plug-In Solar: 7 Critical Facts That Could Help Cut High Electric Bills
Michigan residents frustrated by rising electric bills could soon have another option: a solar system small enough to plug into a household outlet.
House Bill 5764 would establish rules for Michigan plug-in solar, allowing qualifying systems of up to 1,200 watts to connect through a standard 120-volt outlet without advance utility approval. Instead, customers would notify their utility within 30 days.
The proposal comes as Michigan electricity rates continue to rise. It also arrives as inexpensive plug-in systems are appearing across Europe and, increasingly, the United States.
The concept looks simple. Buy several solar panels, connect them to a certified microinverter and plug the system into an outlet. Electricity generated outside flows into the house and reduces the amount purchased from DTE Energy, Consumers Energy or another utility.
But making plug-in solar simple enough to function like a household appliance raises some complicated questions about wiring, safety, utility regulation and who pays for maintaining the electric grid.
Rep. Will Snyder, D-Muskegon, introduced HB 5764 on March 19, 2026, with Democratic and Republican co-sponsors.
Under the bill, qualifying equipment could produce no more than 1,200 watts and would connect through a normal 120-volt outlet. The system would primarily supply electricity for the customer’s own use.
Utilities could not demand advance approval, charge an interconnection fee, or require additional equipment beyond the safety equipment built into the system.
Customers would instead notify their utility within 30 days of installation.
That represents a major departure from existing Michigan policy. The Michigan Public Service Commission currently requires distributed-generation projects to be properly interconnected with the utility before operation.
As of Aug. 8, 2026, HB 5764 remains in the House Energy Committee with no recorded committee vote. The Michigan Legislature’s bill record shows the measure has not advanced to the House floor.
That also means Michigan residents should not assume plug-in solar is currently exempt from utility interconnection requirements.
Plug-in solar, sometimes called balcony solar, is essentially a miniature grid-connected solar power plant.
A typical system consists of one to four photovoltaic panels connected to a microinverter. The inverter converts the panels’ DC power into 120-volt AC electricity synchronized with the home’s electrical supply.
If a house is consuming 1,000 watts and the panels are producing 600 watts, the solar electricity supplies part of that demand. The utility provides the remaining 400 watts.
The result is less electricity passing through the meter from the utility.
Unlike a traditional rooftop system, balcony solar systems can cost hundreds rather than tens of thousands of dollars. Some can also be moved when the resident moves.
There is one important catch: standard plug-in solar isn’t emergency backup power. Certified grid-connected inverters shut down during a blackout to prevent electricity from feeding utility lines while workers are repairing them.
HB 5764 specifically requires that protection.
Germany provides the strongest evidence that plug-in solar can become more than a niche product.
Germany added about 430,000 registered plug-in installations during 2025, according to the country’s federal network regulator. The International Energy Agency’s photovoltaic program reports about 1.24 million balcony installations operating in Germany.
Germany generally limits qualifying plug-in inverter output to 800 volt-amperes.
The idea has begun moving into the United States.
Utah adopted plug-in solar legislation in 2025. Maine, Virginia, Maryland, Colorado, Connecticut, Vermont and New Hampshire followed with legislation in 2026, although effective dates vary.
That makes Michigan part of a broader debate over whether very small solar systems should continue to be regulated in essentially the same manner as much larger rooftop installations.
There are two separate issues: money and safety.
Every kilowatt-hour a customer produces and consumes at home is electricity the utility does not sell.
At low adoption rates, the difference is tiny. With hundreds of thousands of installations, however, customer-owned generation can reduce electricity sales while utilities continue maintaining generating plants, substations, poles, wires and other infrastructure.
HB 5764 would also remove much of the utility’s control over installations. The customer could install qualifying equipment first and report it afterward.
Yet utilities have raised legitimate electrical concerns in states considering similar legislation.
UL Solutions has identified potential problems involving branch-circuit overloading, backfeeding, exposed electrical contacts and ground-fault protection. The organization created UL 3700 testing requirements specifically for plug-in photovoltaic equipment.
I found no recorded evidence as of Aug. 8 that DTE Energy or Consumers Energy has formally opposed HB 5764. Describing either company as fighting the Michigan legislation at this point would go beyond the public record.
The biggest argument for the technology is its price.
Current advertised plug-in solar costs vary widely:
These figures are equipment prices. Mounting hardware, electrical work, permits, shipping or other costs can raise the final price.
Consumers also need to be careful when comparing tax-credit claims. The federal Residential Clean Energy Credit is no longer available for expenditures made after Dec. 31, 2025, according to the IRS.
Some solar sales pages still contain outdated references to the former 30% credit.
The economics become more interesting when compared with current Michigan electricity rates.
The U.S. Energy Information Administration reported Michigan’s average residential electricity price at 22.01 cents per kilowatt-hour in May 2026, compared with 20.23 cents a year earlier.
Consider a well-positioned 1,200-watt system producing roughly 1,200 to 1,600 kilowatt-hours during a year.
At 22 cents per kWh, that electricity would have a retail value of about $264 to $352.
Actual bill savings may be lower. Customers still pay fixed utility charges, and electricity generated when the home isn’t using it may flow back onto the grid without receiving full retail compensation.
Shade, snow and panel direction can also make a dramatic difference.
Still, the sponsor’s claim that a system could cut electricity consumption by as much as 20% is mathematically possible for some households. It should not be treated as a guaranteed 20% reduction in the total bill.
One aspect of HB 5764 deserves particularly close scrutiny.
Germany’s widely used systems generally have an 800VA inverter operating on roughly 230-volt residential electricity. That amounts to only about 3.5 amps.
A 1,200-watt Michigan system operating at 120 volts could supply about 10 amps.
That’s significant on a conventional 15-amp household branch circuit.
Electricity normally moves from the service panel through a circuit breaker and toward household outlets. A solar inverter introduces another source of electricity farther down that circuit. Under some conditions, the utility supply plus solar supply could create electrical loads the panel breaker alone doesn’t fully account for.
Modern safety equipment can address these risks. The question for lawmakers is whether HB 5764’s general certification requirements provide enough protection or whether Michigan should specifically require equipment tested to standards developed for plug-in photovoltaic systems.
Plug-in solar has limitations beyond electrical safety.
Renters may still need permission to attach panels to balconies or buildings. Condo and homeowners association rules could also apply.
Panels must be securely mounted against Michigan winds, snow and ice.
A solar panel facing south in full sunlight will outperform the same equipment hanging vertically from a shaded balcony.
Customers should also determine whether their homeowner or renter insurance has requirements covering solar equipment.
Most importantly, buyers shouldn’t assume a solar product advertised online as “plug and play” is automatically legal for connection to a Michigan home.
HB 5764 essentially asks Michigan lawmakers to decide when a solar generating system becomes small and safe enough that it should be treated more like a consumer appliance than a utility project.
That question will become harder to ignore as equipment prices fall.
The potential consumer benefit is substantial. Michigan plug-in solar could allow households to start generating electricity for hundreds of dollars instead of committing to a rooftop project costing $15,000, $20,000 or more.
The potential savings are credible, but they aren’t automatic. Good sunlight, high self-consumption, properly certified equipment and sensible installation rules will determine whether these small systems make financial sense.
HB 5764 therefore presents Michigan with a reasonable policy question rather than a simple solar-versus-utility fight: Can the state remove enough regulation to make small solar affordable without removing the electrical safeguards that make it safe?
APsystems. “EZ1: Proven Portable Solar, UL 3700 Certified.” APsystems USA. Accessed 8 Aug. 2026.
Bright Saver. “Balcony Solar Kits.” Bright Saver. Accessed 8 Aug. 2026.
Bright Saver. “Is Plug-In Solar Legal?” Bright Saver. Accessed 8 Aug. 2026.
Bundesnetzagentur. “Bundesnetzagentur Publishes 2025 Renewable Energy Figures.” Federal Network Agency, Germany, 8 Jan. 2026. Accessed 8 Aug. 2026.
Bundesnetzagentur. “Plug-In Solar Devices and Balcony Power Plants.” Federal Network Agency, Germany. Accessed 8 Aug. 2026.
Consumers Energy. “Summer Time of Use Rate.” Consumers Energy. Accessed 8 Aug. 2026.
Consumers Energy. “Electric Rate Case.” Consumers Energy. Accessed 8 Aug. 2026.
CraftStrom. “800 Watt Plug & Play Solar Kit.” CraftStrom. Accessed 8 Aug. 2026.
Edison Electric Institute. “Disruptive Challenges: Financial Implications and Strategic Responses to a Changing Retail Electric Business.” Edison Electric Institute, Jan. 2013. Accessed 8 Aug. 2026.
EcoFlow. “STREAM Microinverter.” EcoFlow. Accessed 8 Aug. 2026.
FastDemocracy. “Michigan HB 5764.” FastDemocracy. Accessed 8 Aug. 2026.
International Energy Agency Photovoltaic Power Systems Programme. “Germany.” IEA PVPS. Accessed 8 Aug. 2026.
Internal Revenue Service. “Residential Clean Energy Credit.” Internal Revenue Service. Accessed 8 Aug. 2026.
Internal Revenue Service. “FAQs for Modification of Sections 25C, 25D, 25E, 30C, 30D, 45L, 45W and 179D Under Public Law 119-21.” Internal Revenue Service. Accessed 8 Aug. 2026.
LegiScan. “Michigan House Bill 5764: Introduced Bill Text.” LegiScan, 19 Mar. 2026. Accessed 8 Aug. 2026.
Michigan Department of Licensing and Regulatory Affairs. “Michigan Construction Code Books.” State of Michigan. Accessed 8 Aug. 2026.
Michigan Department of Licensing and Regulatory Affairs. “Currently Open Administrative Rules.” State of Michigan. Accessed 8 Aug. 2026.
Michigan House Democrats. “Snyder Introduces Bipartisan Bill to Expand Access to Residential Solar.” Michigan House Democrats, 18 Mar. 2026. Accessed 8 Aug. 2026.
Michigan House of Representatives. “House Energy Committee.” Michigan House of Representatives. Accessed 8 Aug. 2026.
Michigan Legislature. “House Bill 5764 of 2026.” Michigan Legislature. Accessed 8 Aug. 2026.
Michigan Legislature. “House Energy Committee Bill Records.” Michigan Legislature. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Distributed Generation.” State of Michigan. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Distributed Generation and Interconnection.” State of Michigan. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Michigan Interconnection and Distributed Generation Standards.” State of Michigan. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “2024 Renewable Energy and Distributed Generation Report.” State of Michigan. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Residential Electric Rate Comparison.” State of Michigan, July 2026. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Commission Approves Additional $242M for DTE Electric Grid Upgrades.” State of Michigan, 19 Feb. 2026. Accessed 8 Aug. 2026.
Michigan Public Service Commission. “Commission Approves Additional Reliability Investments.” State of Michigan, 27 Mar. 2026. Accessed 8 Aug. 2026.
National Fire Protection Association. “NEC Enforcement Maps.” NFPA. Accessed 8 Aug. 2026.
National Renewable Energy Laboratory. “Regulatory Considerations Associated with the Expanded Adoption of Distributed Solar.” National Renewable Energy Laboratory, Nov. 2013. Accessed 8 Aug. 2026.
National Renewable Energy Laboratory. “PVWatts Calculator.” National Renewable Energy Laboratory. Accessed 8 Aug. 2026.
PV Magazine USA. “Hoymiles Introduces UL 3700-Compliant Plug-In Microinverter to U.S. Market.” PV Magazine USA, 15 July 2026. Accessed 8 Aug. 2026.
Solar United Neighbors. “What to Know About Plug-In Solar.” Solar United Neighbors. Accessed 8 Aug. 2026.
UL Solutions. “Safety Considerations for Plug-In Photovoltaic Systems.” UL Solutions. Accessed 8 Aug. 2026.
UL Solutions. “UL Solutions Debuts Testing and Certification Framework for Safer Plug-In Solar Across the United States.” UL Solutions, 8 Jan. 2026. Accessed 8 Aug. 2026.
U.S. Energy Information Administration. “Average Price of Electricity to Ultimate Customers by End-Use Sector.” U.S. Energy Information Administration. Accessed 8 Aug. 2026.
U.S. Energy Information Administration. “Average Monthly Residential Electricity Consumption, Prices and Bills by State.” U.S. Energy Information Administration. Accessed 8 Aug. 2026.
U.S. Solar Supplier. “1080W Plug-In Solar Kit with APsystems EZ1 Microinverter.” U.S. Solar Supplier. Accessed 8 Aug. 2026.
VDE Association for Electrical, Electronic & Information Technologies. “First Product Standard for Plug-In Solar Devices.” VDE. Accessed 8 Aug. 2026.
VDE Testing and Certification Institute. “Plug-In Solar Devices: New Product Standard and Certification.” VDE, 2026. Accessed 8 Aug. 2026.
WyoFile. “Lawmakers Pull the Cord on Plug-In Solar Bill.” WyoFile, 20 Feb. 2026. Accessed 8 Aug. 2026.
Michael is the owner of Thumbwind Publications LLC. It started in 2009 covering Michigan and the Upper Thumb. Today, his Michigan Moments series has established a loyal base of 110,000 followers.

[…] currently has over 1,600 operational wind turbines. Collectively, these generate nearly 4000 MW of power, roughly 8% of the…
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CREC, PELCO I BREAK GROUND ON SOLAR PROJECT – The Voice Newsweekly

Citicore Renewable Energy Corporation (CREC) and Pampanga 1 Electric Cooperative (PELCO I) have broken ground on their first embedded solar power project in Magalang, Pampanga.
The facility will have a 41-megawatt-peak (MWp) solar capacity paired with a 53-megawatt-hour (MWh) battery energy storage system (BESS), making it the country’s first embedded solar facility with an Integrated Renewable Energy and Energy Storage System (IRESS).
Once completed in the second half of 2027, the project is expected to provide clean and reliable power to PELCO I consumers, potentially reduce system losses and electricity costs, and help the cooperative meet the government’s Renewable Portfolio Standards.
The project is part of a ₱4.05-billion project finance loan facility from LandBank covering two embedded solar developments.
It will be CREC’s third project in Pampanga, following the 115-MWp Arayat-Mexico Solar Farm and 42-MWp Citicore Solar Pampanga 1.

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PV Progress across Latin America – pv magazine Global

Solar and wind’s share of Latin America’s energy generation mix continues to grow, with renewables comprising roughly 80% of newly installed power generation capacity in 2025. Increasingly frequent droughts, rising demand for grid stability, and the continued decline of solar generation costs have driven countries in the region to embrace clean power. However, as more …
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Auroville’s Hybrid Energy Experiment: Can Its Decentralised Renewable Model Work for the Rest of India? – Open Magazine

Auroville’s Hybrid Energy Experiment: Can Its Decentralised Renewable Model Work for the Rest of India?  Open Magazine
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Hybrid Cosensitization via Fluorescence Resonance Energy Transfer in Emerging Photovoltaic Technologies – advanced.onlinelibrary.wiley.com

Hybrid Cosensitization via Fluorescence Resonance Energy Transfer in Emerging Photovoltaic Technologies  advanced.onlinelibrary.wiley.com
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Iberdrola inaugurates Fénix, its largest photovoltaic plant in Italy with 243 MW – iberdrola.com

Iberdrola inaugurates Fénix, its largest photovoltaic plant in Italy with 243 MW  iberdrola.com
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BLM awaits input on 500-MW solar park proposal in Nevada – Renewables Now

Renewables Now is a leading business news source for renewable energy professionals globally. Trust us for comprehensive coverage of major deals, projects and industry trends. We’ve done this since 2009.
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JinkoSolar Unveils the “Sunny 365” Smart Solar-Storage System: An Integrated Solar-Storage AIDC Model – SolarQuarter

JinkoSolar Unveils the “Sunny 365” Smart Solar-Storage System: An Integrated Solar-Storage AIDC Model  SolarQuarter
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‘Renewable energy more cost efficient for SMEs’ – The Nation Newspaper

‘Renewable energy more cost efficient for SMEs’  The Nation Newspaper
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PV recycling challenges unlikely to be same everywhere – pv-magazine-australia.com

Researchers from the University of Adelaide, Sophia University in Japan, and South Australia-based commercial construction company Kennett have developed correlation and spatial validation models to characterise the relationships between economic, social, geographical, and climatic features and PV decommissioning dynamics, including PV waste generation and PV lifespan.
“Most studies on end-of-life solar panels focus on how much waste will be generated and when it will appear,” said corresponding author Jian Zuo to pv magazine. “Our research goes one step further by asking why these patterns differ across regions. Instead of only projecting future PV waste, we investigated how broader economic, social, geographical, and climatic conditions are associated with PV waste generation and PV lifespan.”
Zuo, from the University of Adelaide, added that by combining machine learning with spatial analysis, the group provides “a new way to understand the regional context behind PV decommissioning, offering evidence that can support more informed planning for future PV recycling and product stewardship.”
The researchers developed a three-stage machine-learning framework to identify the contextual factors associated with PV decommissioning in Australia. Using data from 2,634 postcodes, they trained machine-learning algorithms to predict previously modeled PV waste generation and PV lifespan under three Australian energy market operator decarbonisation scenarios: progress change (PC), step change (SC), and green energy export (GEE).
They used 15 higher-level contextual variables for their prediction, which comprised three economic indicators: household income, rent, mortgage repayments; four social indicators: population, families, household size, private dwellings; two geographical indicators: PV power output and optimum module tilt; and six climatic indicators: rainfall, temperature, direct normal irradiation, global horizontal irradiation, diffuse horizontal irradiation, and global tilted irradiation.
In the first stage of the framework, five machine-learning models -XGBoost, LightGBM, CatBoost, long short-term memory (LSTM), and support vector machines (SVM) were trained separately for PV waste generation and PV lifespan. XGBoost achieved the best performance for PV waste prediction, while LightGBM performed best for PV lifespan.
 In the second stage, the researchers used SHapley Additive exPlanations (SHAP) to quantify how strongly each contextual variable contributed to the predictions and whether its influence was positive or negative. Finally, they applied multiscale geographically weighted regression (MGWR) to test whether these SHAP-derived relationships remained statistically significant and spatially consistent across Australia.
“One of the most interesting findings was that different types of factors matter for different aspects of PV decommissioning,” Zuo said. “We found that PV waste generation is more strongly associated with socioeconomic features, such as population, families, dwellings, income, and rent; while PV lifespan is more strongly associated with geographical and climatic conditions, including rainfall, temperature, and solar irradiation.”
Zuo said that these relationships vary considerably across Australia, suggesting that future PV recycling challenges are unlikely to be the same everywhere.
“My team is planning to conduct more studies examining the dynamic interactions among policy, economic conditions, technological advances, and stakeholder attitudes, as it is essential for understanding solar system retirement decisions,” he said.
The framework has appeared in “Spatiotemporal correlations of PV decommissioning: Machine-learning insights from socioeconomic and geoclimatic data,” published in Environmental Impact Assessment Review. Researchers from Australia’s Adelaide University, commercial construction company Kennett and Japan’s Sophia University contributed to the study.
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Levanta Renewables Begins Construction of 166 MWp Solar-BESS Project in Philippines – SolarQuarter

Levanta Renewables Begins Construction of 166 MWp Solar-BESS Project in Philippines  SolarQuarter
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Clean power push: India hits 300 GW non-fossil capacity milestone ahead of 2030 target – The Times of India

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I'm preparing for my next power outage by turning a Raspberry Pi into a super-low-power desktop PC – How-To Geek

Between work and my own hobbies, I basically always need access to a PC. So, after a recent power outage, I decided to repurpose an old Raspberry Pi and an Anker Power Station to work as a small backup Linux desktop in an emergency.
Despite the meager hardware specs, it actually works better than I’d hoped, and I can still use it for my other projects in the meantime.
For this setup, I’ve paired a Pi 4 B (8GB) with a SSD in an external USB enclosure, a small portable monitor, and a few other essential peripherals.
Since the goal is to be able to function without power or internet during an outage, I’ve also taken an offline-first approach to software. I installed LibreOffice, Joplin, and migrated a bunch of media files over so I wouldn’t rely on streaming or my local media server, which is going to be off.
When it isn’t working as a backup desktop, I use the exact same setup for testing low-power Linux distros, some self-hosted applications, and more—a backup desktop doesn’t need to tie up your equipment permanently.
The Pi 5 is certainly more performant than the Pi 4, but the Pi 4 consumes less in terms of pure power. The Pi 4 has an idle draw around 3 watts (W) (with peripherals), and the Pi 5 can reach nearly 9W under load, while the Pi 4 tops out around 7W.
Because of that limitation, the Pi 4 will happily run on a standard 15W power supply, while the Pi 5 theoretically requires up to 27W. Depending on which battery bank you use for a backup, that could be an issue. The Pi 4 runs comfortably off a USB-C port on my power bank, which is actually an important way to minimize power draw.
Of course, the Pi 5 is between two and three times faster than a Pi 4, which tends to be most obvious when you’re launching apps or booting up. It also has a PCIe lane that can be exposed via an optional hat, which is incredible if there are any high-speed devices in the mix.
The extra power used—and larger power supply requirement—are probably worth the tradeoff if you can get a Pi 5 at a reasonable price. However, I already own a PI 4, which made the cost proposition a no-brainer.
If you’re buying new, you should size your battery against a measured draw or the maximum theoretical draw, not a runtime chart provided by the manufacturer. They tend to be optimistic, which can be a problem for something you rely on.
For example, assuming my whole setup pulls 12W, a 1000 watt-hour battery will be able to power things for 83 hours, or about 3.5 days. The same battery would be able to run my desktop for only a few hours (if I’m lucky) or a laptop for a day or so.
Large power stations usually have two very different types of output: AC and DC. DC outputs include things like USB type A, USB-C, and 12-V auxiliary power (cigarette lighter) ports. Those ports tend to have fairly little overhead.
AC ports are a completely different situation. Batteries output DC power, which means that your power station must first convert DC to AC before you can actually use it. The conversion process uses an inverter, which can easily use 10W to 30W while it is idle but switched on. When they’re in use, conversion isn’t perfect either. Some energy is lost during the process, often between 5% and 15% of the total draw.
Here’s your sine.
So, if you’re powering a device that only requires 10-12W DC, the overhead from the AC inverter could triple your energy consumption.
You should run the Pi directly from the station’s DC or USB-C output and leave the inverter off unless you actually need it.
I have five 100W solar panels that I can attach to my battery whenever I need them, which produce more than 5x as much as my setup’s real-world draw in a 24-hour period.
In practice, that gives me margin to cover cloudy days without worrying about running down the battery.
I have a Starlink Mini on hand for emergencies and when I travel anywhere without cell service. It has proven to be indispensable when there is an outage and I need to get online to check for updates or work.
The Starlink Mini draws somewhere around 20W while operating, but it can surge up to 60W while it first acquires a signal.
Just like the Pi (and any other devices, really), you should run the Mini directly off of DC if you can. Depending on your system, you may have a USB-C port that can meet its power requirements. Otherwise, a cigarette lighter port is probably your best option.
I initially cobbled together my solar-powered Pi with a powerbank for emergencies, but I’ve also used the same setup on the road a handful of times. The Pi can also function like a media server, a NAS, a VPN, and a Pi-hole if you set up your storage correctly.
Even if you’re using a laptop rather than a Pi, the same general principles apply. Use power-saving mode when you can, and try to minimize your network usage. Cellular, Wi-Fi, and Bluetooth all add to your power draw. Additionally, if you can charge your laptop using a USB-C port rather than the power station’s AC port, you should—it’ll make a noticeable difference in your battery life.
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For your backup power, be aware of Modified sine wave inverters as they are the cheap option. They can do damage to electronics and motors. Spend the extra money for pure sine wave, which Will be advertised on the listing if it is there. If the inverter doesn’t say what kind it is, it’s modified sine.
Also make sure to check any battery, solar charge controller or especially the solar ‘generator’ (which don’t generate anything, the power is collected by connected devices like solar panels [pv]) for reviews and verification that they function safely as there are a lot that don’t have thermal runaway fuses to prevent fires.
I have a whole house 40kva generator with autostart and ATS so I have that covered
That’s a lot of work to just have a limited use computing device powered.

Instead I went with a 6 KW inverter generator, a port and lockout type switch installed on the outside of the home. It can use 2 fuels for power (gasoline and propane). I just use propane, it mitigates stale gas and gummed carburetor issues.

It will run the refrigerator, sump pump, lights, internet, a few PCs, and a furnace in the winter.

If you have a power outage it’s probably because some other event is going on that causes more problems than just your internet going out.
If the power, or when the power drops off I don’t actually notice anything.
The inverter just switches over to use our solar and/or 10 kW battery system, takes a few mS so no glitches.

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Chinese Solar Company Says Its New Cell Has An Efficiency Of 35.5 Percent – engadget.com

Commercial solar cells only have a conversion efficiency of around 25 percent.
Chinese company LONGi has developed a solar cell that it claims has achieved a conversion efficiency of 35.5 percent, as verified by the European Solar Test Installation, a reference laboratory for the calibration of photovoltaic (PV) devices. That’s an impressive conversion efficiency compared to what most solar cells are capable of. According to the US Energy Information Administration, the solar cells in commercially available panels are just now approaching a 25 percent efficiency. There are cells with a conversion efficiency of 50 percent, but they’re for niche uses, like solar panels for satellites. 
The company specifically developed crystalline silicon-perovskite tandem solar cells. They’re an emergent PV technology that LONGi believes is the future of solar energy. Theoretically, these cells could achieve an efficiency of 43 percent. LONGi first achieved an efficiency of 33.9 percent in November 2023 and then 34.6 in June 2024. After several more incremental increases, the company is now claiming an efficiency of 35.5 percent.
LONGi says it holds the world record for efficiency when it comes to this particular PV technology. That said, the US Department of Energy’s National Renewable Energy Laboratory developed a solar cell with an efficiency of 39.5 percent back in 2022. In the grand scheme of things, who holds the record matters very little for most people. What matters is finding a way to mass produce and commercialize cells with these efficiencies so that they can help address humanity’s energy problems. 

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Horningsea solar farm set for approval despite abbey concerns – bbc.com

A solar farm is set for approval despite concerns about a Grade II listed abbey and a potential new sewage works nearby.
The proposal for the farm and battery energy storage at Low Fen Drove Way in Horningsea would cover about 74 hectares (183 acres) of agricultural land and could power more than 13,000 homes.
A report to South Cambridgeshire District Council's planning committee said it would be for "a temporary 40-year operational period, after which the site would be restored to agricultural use".
Councillors are recommended to approve the plans next week, with officers stating "there is a demonstrable unmet need for renewable energy".
The report said the conservation officer objected as it "would adversely affect the setting and significance" of Biggin Abbey, a listed building and former residence of the Bishops of Ely, as well as having concerns about the impact on two conservation areas.
But officers said: "When weighed against the public benefits of the proposal, officers consider that the public benefits will outweigh the harm identified."
The proposal is next to a site earmarked for a new sewage treatment works, replacing the one in Cambridge, but government funding for the relocation and associated development of thousands of homes has been withdrawn.
In December, the chair of the Cambridge Growth Company said he believed the planned development in Cambridge was "not dead".
The report said: "It is acknowledged that there is no certainty on whether it will come forward by virtue of the current funding issues experienced by Anglian Water."
But officers said they did "not consider that the [solar farm] proposal when combined with the adjacent wastewater treatment site would fundamentally undermine Cambridge green belt purposes when put into the context of the whole district".
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The development near Blackhall Rocks in County Durham will have more than 83,000 panels.
Campaigners say many residents don't understand the "sheer scale" of the Whitestone solar farm plan.
Two of the UK's largest solar projects are already proposed for the area near Dereham.
The scheme near Hawick includes both solar panels and battery energy storage elements.
Construction of the delayed 43,000-panel solar farm is expected to begin later this year.
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Trump unveils trade actions to compete with China on solar and chips – Yahoo Finance

Trump unveils trade actions to compete with China on solar and chips  Yahoo Finance
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EDP abandons €169 million Alqueva floating solar project – portugalresident.com

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EDP has abandoned plans for a vast floating solar and wind development at Alqueva after environmental objections forced costly changes to a project already struggling to remain commercially viable.
The Grande Lago hybrid plant, awarded to EDP Renewables through a public tender in 2022, would have combined 70 megawatts of floating solar panels on Portugal’s largest reservoir with an onshore wind farm.

With a total planned capacity of 154MW, it was the largest of six floating solar projects awarded through the competition and was initially promoted as potentially the largest facility of its kind in the world.
EDP has now confirmed that it will relinquish the project following a detailed review.
“The conditions are not in place to proceed with the Grande Lago Hybrid Power Plant project, involving floating solar and wind technologies,” an official company source told Observador.
EDP attributed the decision to “a combination of several factors” preventing the scheme from being developed sustainably, predictably and in accordance with the company’s standards.

At the heart of the decision was the project’s deteriorating financial viability. Its estimated cost had risen from more than €100 million to €169 million, including the solar and wind installations and their electricity transmission lines.
Equipment and construction costs increased sharply after the pandemic, while wholesale electricity prices have fallen during periods of abundant renewable generation. The business model depended heavily on income from wind production to compensate for the exceptionally low — and initially negative — price proposed for its solar electricity.
The project had originally been expected to begin operating in 2025.
Environmental study rejected
The Portuguese Environment Agency (APA) ruled that the project’s environmental impact study was non-compliant after two years of discussions with EDP.
One of the principal concerns involved the effects on vulture habitats of the power line connecting the wind farm to the national grid. Addressing those concerns would have required EDP to reconsider the proposed transmission corridor.
Other measures needed to mitigate negative environmental effects would have left elements of the project more widely dispersed, increasing both its technical complexity and cost.
The environmental ruling was therefore not the sole reason for EDP’s withdrawal, but it contributed significantly to making an already finely-balanced project unviable.
The company said its decision did not alter its commitment to renewable energy in Portugal, including projects combining different generating technologies with battery storage and the modernisation of existing facilities.
It is not, however, expected to make use of a recent government measure allowing developers to transfer generating capacity awarded for reservoirs to alternative renewable energy or battery projects on land.
The Alqueva area already has a substantial number of renewable developments. Some have only secured approval after major alterations intended to protect biodiversity. Any replacement EDP project would also have to undergo an assessment of its cumulative effects alongside facilities already approved for the region.
Five of six projects fail to clear environmental hurdle
EDP’s withdrawal means only one of the six floating solar plants awarded in the 2022 competition has so far secured environmental approval.
Finerge projects at the Paredela and Salamonde dams received negative opinions from the Institute for Nature Conservation and Forests, largely because of their location within the Peneda-Gerês National Park.
A Voltalia project planned for the Cabril reservoir was also rejected following strong opposition from local communities.
Only Endesa has obtained a favourable environmental impact assessment, for a floating solar plant at Alto Rabagão. A further project awarded to Finerge at Tabuaço has yet to reach the assessment stage.
The figures leave the government’s ambitions for large-scale floating solar on Portuguese reservoirs severely diminished — and demonstrate that renewable energy projects are not automatically environmentally benign simply because of the technology involved.
Negative tariff helped EDP secure largest concession
EDP won the largest lot in the competition with an aggressive proposal involving a negative guaranteed tariff for solar electricity during the first 15 years of a 30-year concession.
In effect, the bid reflected EDP’s expectation that the associated wind farm and shared grid connection would make the overall hybrid development profitable. Wind production can complement solar power because it frequently peaks at different times of the day.
At the time, the scheme was presented as an unusual example of value being created by combining renewable technologies and making more efficient use of limited grid capacity.
It also anticipated a phenomenon that has since become increasingly common: wholesale electricity prices turning negative during hours when large quantities of solar power enter the grid and supply exceeds demand.
Those market conditions ultimately helped undermine the assumptions on which the project was based.
Source: Observador
Journalist for the Portugal Resident.

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    Study across Europe finds solar-panel fires stayed rare, but wiring and connectors emerged as weak spots – yahoo.com

    Study across Europe finds solar-panel fires stayed rare, but wiring and connectors emerged as weak spots  yahoo.com
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    Layoffs at solar panel manufacturer Heliene in Mt. Iron, people will be paid through October 4th – WDIO.com

    People who work at the solar panel manufacturer Heliene in Mt. Iron are being laid off. The company notified the state through a WARN notice. WARN stands for Worker Adjustment and Retraining Notification Act.
    The letter to the mayor of Mt. Iron and to DEED states that the people impacted were notified on Wednesday, and the layoffs are immediate. It’s not clear exactly how many are now on layoff. But they will be permanent.
    However, the company plans on paying the employees through October 4th.
    The cause of the layoffs is listed as unforeseen business circumstances. “Heliene sincerely regrets having to take this action,” according to the letter.
    When the plant opened in 2011, it was called Silicon Energy and run by another company.
    Any person with disabilities who needs help accessing the content of the FCC Public file should contact Vicki Kaping at vkaping@wdio.com or (218) 727-6864
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    Higher Costs, Insecure Software? How US Ban on Foreign Inverters Could Hit Solar – PCMag

    Higher Costs, Insecure Software? How US Ban on Foreign Inverters Could Hit Solar  PCMag
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    Once deemed “too old” for solar panels, Pompeii now generates its own power using roof tiles that look like they came from Ancient Rome – Energies Media

    Energies Media
    The ancient city of Pompeii shows how heritage and modern technology can come together using solar roof tiles.
    Globally, nations are under pressure to decarbonize due to stringent climate goals.
    To achieve these milestones, renewable energy infrastructure must significantly expand to displace fossil fuels.
    However, culturally rich and heritage sites are often impossible to modernize due to their historic architecture.
    Will Pompeii’s “disguising” approach be the solution these cities have been waiting for all along?
    As the effects of climate change worsen, governments worldwide are urging communities to meet net-zero targets.
    International climate agreements mandate that fossil fuels must be replaced with green energy sources.
    While global clean power capacity reached 5.15 terawatts at the end of 2025, many regions struggle to decarbonize.
    More specifically, historical cities find it the most challenging to transition.
    Since most urban regions are densely packed, space is limited for the addition of new renewable infrastructure.
    As a result, rooftop solar panels have been vital in cities to lower their carbon footprints.
    In ancient metropolises with centuries-old buildings and monuments, these panels are less ideal. The technology features heavy mounting hardware, metallic frames, and dark reflective glass.
    Installing modern panels onto these historic structures ruins the aesthetic and can damage the delicate architecture.
    With countless historic cities trying to save monuments’ protected status, the need for innovation increases.
    Modern cities in general have high carbon footprints, but so do historic urban centers.
    In Europe, old buildings are responsible for almost 36% of the region’s energy-related carbon emissions.
    This is attributed to inefficient cooling and heating, and outdated power infrastructure.
    As a result, the industry has developed a solution known as Building-Integrated Photovoltaics (BIPV).
    BIPV innovations include solar facades, solar glass panes, and integrated windows.
    These technologies allow structures to produce clean energy directly from their exteriors without significantly altering the building.
    It reduces installation costs, makes deployment scalable and simpler, and helps buildings lower localized carbon footprints.
    However, these standard solutions are primarily designed for modern architecture.
    Sleek glass towers and high-rise skyscrapers are ideal for these BIPV technologies.
    They feature clean geometric lines and flat surfaces on which these solar designs disappear.
    Traditional BIPV will clash with ancient architecture. That is why Pompeii opted for Invisible Solar instead.
    Photovoltaics are being disguised as roof tiles in Pompeii.
    The Italian family business DyaQua created Invisible Solar to address heritage barriers.
    The technology has been designed to look identical to traditional building materials, including terracotta, concrete, wood, or stone.
    Standard monocrystalline silicon solar cells are inside a non-toxic, recyclable polymer mixture.
    This mixture is optical-grade and light-permeable. Incoming sunlight is captured and directed to the hidden solar cells.
    The tiles are tolerant of heavy static loads, chemical solvents, and harsh weather.
    The modules can be molded into different historical shapes, such as classic flat shingles or Tuscan Roman tiles.
    The polymer has a photocatalytic coating. It is activated by natural light to break down dirt and purify the air.
    The technology’s efficiency may be slightly lower than standard black panels, but it is key to heritage site preservation.
    The goal of the technology was to power Pompeii’s fresco lighting using custom terracotta-style tiles.
    It was deployed across several historic structures, including the House of the Vettii and the House of Cerere.
    By using Invisible Solar, clean electricity can be produced without altering ancient architecture.
    Ultimately, it proves that sustainability and heritage preservation can be harmonized. Soon, other protected cities, from Évora to Split, can meet decarbonization goals.
    Anke Maree is a writer with a clear and engaging editorial style. Her work focuses on making complex topics accessible, informative, and relevant for readers across different areas of interest.
    Anke Maree is a writer with a clear and engaging editorial style. Her work focuses on making complex topics accessible, informative, and relevant for readers across different areas of interest.
    Anke Maree is a writer with a clear and engaging editorial style. Her work focuses on making complex topics accessible, informative, and relevant for readers across different areas of interest.

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    Trump imposed a 15% tariff on a key component for solar panels and microchips – Українські Національні Новини (УНН)

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    U.S. President Donald Trump announced a 15% tariff on imports of polysilicon, which will take effect on December 4. The decision is aimed at reducing dependence on China in the production of solar panels and semiconductors.
    U.S. President Donald Trump announced the introduction of a 15% tariff on imports of polysilicon and its derivatives, seeking to reduce U.S. dependence on China in the supply chains for solar panels and semiconductors. Politico reports, writes UNN.
    The new tariffs will take effect on December 4. In addition to the tariff, the order provides for the establishment of minimum prices on imports of polysilicon, ingots, wafers, solar cells, and solar modules. The document also allows U.S. Customs to restrict imports if there is suspicion that companies are trying to bring products into the country before the tariffs take effect.
    This will move the supply chain here. We have an industry here, it is too small, and it will explode
    Polysilicon is a key raw material for producing solar panels, semiconductors, military equipment, and electronics. According to S&P Global, China almost completely dominates the global market for this material.
    Trump called Canada “disgusting” during a speech in Las Vegas06.08.26, 07:38 • 8260 views
    The order followed an investigation by the U.S. Department of Commerce into national security risks arising from dependence on Chinese supplies. The White House emphasized that the decision is intended to strengthen American microchip manufacturing and support the development of infrastructure for artificial intelligence technologies. At the same time, experts note that the new tariffs could affect the global solar energy market.
    China is increasingly concerned about the Mythos AI model ahead of the Trump-Xi summit – Bloomberg04.08.26, 16:06 • 3904 views
    Stepan Haftko

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    The Vatican put 2,400 solar panels on an audience hall roof and now wants to cover a field ten times the size of the whole country, on foreign soil, in between the antennas still beaming shortwave radio at three continents – Autonocion.com

    By: Luis Reyes
    Published: Aug 9, at 5:00pm ET
    Putting solar panels on land you already own is usually a matter of paperwork and a phone call. You get a permit, you hire someone to bolt the racking down, and you sign whatever the utility puts in front of you so the meter runs both ways. Most of the fight is with a zoning board.
    The Vatican has been working on this since June 2024, and last Tuesday it got as far as a first committee meeting.
    On August 4, officials from the Italian government and the Holy See sat down in the Sala Verde at Palazzo Chigi for the opening session of a joint committee whose entire job is to oversee the building of one solar farm. Not a fleet of them. One. The Italian side alone brought chiefs of staff and technical representatives from the foreign ministry, the interior ministry, the culture ministry and the environment and energy security ministry, plus the Lazio Region, the city of Rome, the national energy regulator ARERA, grid operator Terna and the utility Acea.
    That is the machinery it takes when the country buying the panels is 44 hectares of walled city and the field they are going on sits in somebody else’s territory.
    The land is at Santa Maria di Galeria, north of Rome, and it is Vatican property under a 1951 agreement with the Italian state. It runs to 424 hectares, about 1,048 acres, which makes it close to ten times the size of Vatican City itself.
    It has been the transmission site for Vatican Radio since 1957, when Pius XII inaugurated a broadcast center with a transmitter hall designed by Pier Luigi Nervi. The shortwave service still runs from there today, on a published schedule of directional antennas beaming at Africa, Asia and the Americas.
    The site is extraterritorial, which sounds like a technicality until you try to sell electricity across the fence. Power generated on Holy See land and pushed onto the Italian grid is an international transaction, and Italy does not hand out grid connections to foreign sovereigns on a standard form.
    So the two states negotiated one. Archbishop Paul Richard Gallagher, the Holy See’s Secretary for Relations with States, signed an agreement with Italy’s ambassador to the Vatican, Francesco Di Nitto, at Palazzo Borromeo on July 31, 2025. The Italian parliament then ratified it through Law 52 of April 1, 2026, published in the official gazette three weeks later, and the whole thing entered into force on May 27, 2026, once both sides finished the procedures in Article 5.
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    Italy’s foreign ministry confirmed the entry into force the following day. Roughly two years and two popes to reach the point where an installer could theoretically show up.
    The financial terms were never published in full, but the Associated Press reported the shape of them at signing. The Vatican is exempt from Italian taxes on importing the panels. It also does not get the incentives an Italian homeowner or business collects for going solar, which leaves the Holy See in the odd position of being the only landowner in the country who can bring the hardware in duty-free and then has nobody to send the rebate paperwork to.
    Italy gets something concrete out of it too. Under the arrangement, the country can count the field toward its European Union clean energy targets, which is a neat trick given the electricity is destined for a state that is not in the EU.
    Officials speaking anonymously to AP put the build cost at under 100 million euros, about $114 million, and said any power generated beyond the Vatican’s own needs would go to the surrounding community. Contracts were expected to go out for bids once the Italian parliament signed off, which it now has.
    Francis started this with an apostolic letter called Fratello Sole, dated June 21, 2024, the summer solstice. It ordered an agrivoltaic plant at Santa Maria di Galeria that would cover the radio station’s power draw and the “complete energy sustenance” of Vatican City State, and it made the heads of the Governorate and of APSA, the office that manages Holy See property, extraordinary commissioners with the authority to get it done.
    Leo XIV took the next step on June 1 this year, signing a chirograph that created the Fratello Sole Foundation and approved its statutes on the spot. Sister Raffaella Petrini, president of the Governorate, was named foundation president for the first three years, with APSA president Archbishop Giordano Piccinotti as vice president.
    The statutes are worth reading, because they describe something closer to a small utility than a charity. The foundation is a Vatican public legal person with its own balance sheet. APSA will grant it use of the land. It will handle production, distribution, sale, supply and monitoring of electricity, and its annual plan has to include a proposed tariff for the power it sells to Vatican entities.
    Those entities go beyond the walls. The text names the buildings covered by Articles 14, 15 and 16 of the 1929 Lateran Treaty, which is how the major basilicas and the Holy See’s other extraterritorial properties around Rome end up on the same bill.
    Two more details stand out. The foundation is explicitly allowed to build further agrivoltaic or other renewable plants at other sites, so this is written as a template rather than a one-off. And the board is three people, unpaid, with expenses reimbursed and nothing else.
    Then on June 10, the Governorate, APSA, the foundation and Acea signed a memorandum of understanding to define and progressively implement the plant, with the Roman utility bringing the energy, water, environmental and agricultural expertise. Acea already had a foot inside the walls, having helped build out the charging network the Vatican put in as it started swapping its state car fleet over to electric.
    The design brief is not a scraped field of racking. Agrivoltaics puts the panels high enough that crops or grazing continue underneath, and the Italy–Holy See agreement specifically commits to preserving agricultural use and holding down the environmental impact. The site is currently farmed.
    That is a live engineering trade rather than a slogan, and the results depend heavily on the crop. Spanish researchers grew tomatoes 40 percent heavier under a semi-transparent solar roof because in a hot enough summer the shade is worth more than the light it steals. Arizona has been running raised arrays over vegetable beds and finding the same thing, along with a drop in skin temperature for the people working underneath.
    Other crops disagree. A Bavarian grower who mounted panels on the poles already holding up his hop bines got excellent electricity out of his first prototype and fewer cones, because the plants climbed into the glass and went bushy instead of flowering. Rome sits at a latitude where the shade argument generally works. What actually gets planted at Santa Maria di Galeria has not been announced.
    This is the part worth being clear about. There is no plant. There is a treaty in force, a ratifying law, a foundation with statutes, a memorandum with a utility and a joint committee that met for the first time last week. No official capacity figure has been released, either. L’Espresso reported in June that information emerging during the approval process pointed to something near 100 megawatts, which would be enormous next to the Vatican’s own demand, but that number has not come from the Holy See or from Rome.
    What does exist is 2,400 panels on the roof of the Paul VI Audience Hall, put up in 2008 and making around 300 megawatt-hours a year. That hall was designed by Nervi as well, the same architect who drew the transmitter building out at the radio site half a century earlier, which is a tidier piece of continuity than most energy projects manage.
    The Holy See’s stated goal is to cover its electricity entirely, and Vatican officials have said they expect the result to make this the world’s first carbon-neutral state. Seven countries already run their grids on close to 100 percent renewable power, mostly hydro and geothermal, so the distinction being claimed is narrower than the headlines around it.
    The next hard date is buried in the statutes. The foundation’s board has three months from its June 1 constitution to promulgate its operating regulation, which puts the deadline around the start of September. After that comes the tendering, and only then does anyone find out how many panels actually fit between the antennas.
    Agree or laugh out loud?
    Luis Reyes · Jul 12, 2026
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    Photovoltaic-Thermal Hybrid Solar System – gsa.gov

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    Photovoltaic-thermal or PV-T hybrid solar systems increase electricity production by cooling the PV panel and using the removed thermal energy to heat water. They use the same footprint as a standard PV system.
    The National Renewable Energy Laboratory, or NREL, assessed the nation’s first large-scale PV-T system installed at the Thomas P. O’Neill, Jr., Federal Building in Boston, Massachusetts. It provided many lessons learned in system design. It also identified a target market of locations with high utility costs and electric hot water.
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    Photovoltaic nanoassembly of nanowire arrays sensitized with colloidal nanocrystals for near-infrared retina photostimulation – science.org

    Photovoltaic nanoassembly of nanowire arrays sensitized with colloidal nanocrystals for near-infrared retina photostimulation  science.org
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    Tribune editorial: Growth of solar energy gives Utah alternatives – sltrib.com

    (Rick Egan | The Salt Lake Tribune) Solar panels at the Kesler ranch in Holden, on Thursday, March 26, 2026.
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    Saudi Arabia advances clean energy transition with 1.1GW Al Henakiyah solar project – fastcompanyme.com

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    Saudi Arabia has brought the 1,100MW Al Henakiyah (1) Solar PV Plant into commercial operation, marking another milestone in the Kingdom’s renewable energy ambitions under the National Renewable Energy Program.
    Located south of Al Henakiyah Governorate in the Madinah Region, the project entered commercial operation in summer 2025. Supervised and implemented by the Ministry of Energy, the solar plant is expected to generate enough electricity to power approximately 190,000 homes each year.
    Electricity from the facility will be purchased at a tariff of 1.6842 cents per kilowatt-hour, highlighting Saudi Arabia’s continued ability to deliver renewable energy at globally competitive costs.
    The project forms part of the fourth phase of the National Renewable Energy Program and supports the Kingdom’s broader strategy to accelerate the deployment of renewable energy, expand energy storage capacity, advance the Liquid Fuel Displacement Program, and reduce carbon emissions.
    The Al Henakiyah (1) Solar PV Plant also supports the goals of Saudi Vision 2030, which aims to increase the share of renewable energy and storage to around 50% of the country’s electricity generation mix by 2030. The initiative is also intended to strengthen energy security, diversify the energy sector, and support the Kingdom’s long-term sustainability objectives.
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    The MoU boosts investment ties through closer institutional coordination and business collaboration.

    The report noted that cities across the Middle East, led by Dubai, are demonstrating particularly strong momentum in embracing AI as a driver of future growth.

    The exhibition highlights key milestones in the UAE’s space program, including the Emirates Lunar Mission and the UAE Astronaut Program. 
    You can see how this popup was set up in our step-by-step guide: https://wppopupmaker.com/guides/auto-opening-announcement-popups/
    You can see how this popup was set up in our step-by-step guide: https://wppopupmaker.com/guides/auto-opening-announcement-popups/
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    California surpasses 21 GW of energy storage connected to grid – Solar Power World

    Solar Power World
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    California has installed more than 21 GW of energy storage across the state, making it one of the largest battery fleets in the world, said the California Energy Commission.
    A Tesla battery installation in Salinas, California.
    When Gov. Gavin Newsom took office in 2019, less than 700 MW of battery storage served the grid. The jump to 21,112 MW is an increase of more than 2,500% in just seven-and-a-half years. That’s equivalent to roughly one-third of the statewide peak demand, which exceeded 63,000 MW during the September 2022 heat wave.
    “While Donald Trump is hellbent on burning more expensive fossil fuels and raising costs for Americans, California is proving there’s a better way — from new instant rebates putting thousands of dollars back in the pockets of first-time electric car buyers, to an arsenal of batteries across the state that just topped 21,000 MW, the nation’s largest, helping power the world’s fourth-largest economy,” Newsom said. “California is showing the world what real economic security looks like. It’s one that can’t be held hostage by foreign conflicts and Big Oil. The Golden State is leading the charge on building a reliable, affordable clean future.”
    Of the total 21,112 MW of battery storage serving Californians, nearly 16,000 MW comes from 310 utility-scale battery systems located within California, and an additional 2,000 MW comes from utility-scale battery facilities located in Nevada and Arizona. These resources are part of the California Independent System Operator (CAISO) grid, which serves about 80% of Californians.
    Another 3,000 MW comes from more than 300,000 smaller battery systems installed at homes, schools, farms, businesses and industrial facilities across the state.
    Energy storage systems storing solar power removes the need to turn to gas peaker plants for electricity. For the first time, Californians used more solar than natural gas during the first half of 2026.

    Comparing January through June of 2024 to that same stretch in 2026, solar power usage grew by 22%, while natural gas usage dropped by 51%, according to the California Energy Commission’s (CEC) analysis of state grid data. Meanwhile, battery storage capacity on the grid grew by 80% over that same period, giving solar power somewhere to go even after the sun sets.
    “California has always prioritized innovation, investing in the science and technology of the future and advancing the goalpost on what is possible,” said CEC Chair David Hochschild. “Seeing solar surpass gas on the grid is proof that our vision of a 100% clean energy future is absolutely possible.”
    While seasonal factors play a role — solar production is strong and electricity use is relatively moderate in spring — the trend highlights how the growing contribution of solar and battery storage are changing the way California’s grid operates.
    This shift reflects years of investment in clean energy infrastructure. Since 2019, California has added more than 37,000 MW of clean and renewable energy resources to the grid, leading the nation in deployment of new electricity resources and transforming the state’s electric system.
    California estimates more than 52,000 MW of battery and long-duration energy storage will be needed by 2045 as electricity demand grows from continued electrification of transportation, buildings and industry operations. With this update, California is now 41% of the way toward its goal.
    Batteries are essential to California achieving 100% clean electricity retail sales by 2045. The latest numbers, from end of 2024, show remarkable progress: 67% of retail electric sales come from clean energy.
    This progress is increasingly evident on the CAISO grid. Last year, clean energy resources met 100% of grid demand for at least some portion of the day on 279 days. For the first half of 2026, the CAISO grid has hit that mark on 92% of the days.
    The state is committed to rolling out clean energy infrastructure as quickly and safely as possible. The CEC’s Opt-In Certification Program, California’s accelerated permitting program for clean energy infrastructure, has approved 1,850 MW of battery storage and 1,450 MW of solar generation in the past year, with more than 3,000 MW in the queue and more being added. These projects undergo rigorous environmental and safety review by the CEC and include agreements that provide benefits to the communities in which projects are located.
    Kelly Pickerel has more than 15 years of experience reporting on the U.S. solar industry and is currently editor in chief of Solar Power World. Email Kelly.








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    Trump sets new tariffs on polysilicon imports for solar panels, semiconductors – E&E News by POLITICO

    By Kelsey Tamborrino | 08/07/2026 06:07 AM EDT
    Supporters of the new strategic move say it’s crucial to protect domestic manufacturing and to counter China.
    The White House proclamation sets a 15 percent tariff on derivatives of polysilicon, as well as minimum import prices on polysilicon, wafers, cells and modules — all major components of the solar panel. Monica Jorge/Hartford Courant/TNS/Newscom
    The Trump administration announced on Thursday it would impose new tariffs and set price floors on imports of polysilicon, a key input for both solar panels and semiconductors.
    The dual effort is the administration’s latest tariff escalation and comes as it has erected numerous hurdles for renewable energy development, including the rescission of tax incentives long used to help grow the solar industry.
    Supporters of the new strategic move say it’s crucial to protect and spur new investment in domestic manufacturing, while also countering China’s dominance in the supply chain. And it comes amid a boom in artificial intelligence data centers in the United States that is driving new energy demand and prompted a push by President Donald Trump to expand the domestic semiconductor industry.
    “We’re bringing the chip business back into the United States in a very big way,” Trump said during a signing event Thursday.
    The transformation of the energy sector.
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    The leader in energy and environment news.
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    Fast-track approval for Haldon Station solar farm proposal – thepress.co.nz

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    Trump Tosses Solar Factories a Lifeline – Heatmap News

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    On another offshore wind kill, inverter bans, and NYC’s new power line
    Current conditions: The wildfires in Spokane, Washington, have burned nearly 11,000 acres and destroyed close to 900 structures in the past week • Tropical Depression Maymay is veering away from the Philippines after battering northern Luzon with 45-mile-per-hour winds • Temperatures in Seoul are surpassing 103 degrees Fahrenheit today as South Korea’s heat wave caps off before dropping about 10 degrees over the weekend.
    A solar cell at the Elin Energy factory in Texas. Brett Coomer/Houston Chronicle via Getty Images
    The Trump administration taketh away, and the Trump administration giveth. A month after President Donald Trump’s One Big Beautiful Bill Act effectively eliminated a key incentive for solar developers to buy domestically-made panels, the White House has announced new tariffs on polysilicon and virtually every component in each step of the photovoltaic supply chain. The trade case originally came before the Department of Commerce when polysilicon makers complained that they couldn’t compete with Chinese manufacturers on semiconductor-grade material without also having a market for the solar-grade stuff. As my colleague Emily Pontecorvo and I reported last night, the administration will impose a 15% tariff on all imports and set baseline prices at which the levies would kick in for each part of the solar supply chain, ranging from $0.22 per watt for solar cells, the actual devices that convert sunlight into electricity, to $0.38 per watt for completed panels. Raw polysilicon, meanwhile, will start at $20 per kilogram. Tariffs have been tried before in the U.S. and Europe to keep out the onslaught of cheap Chinese products and protect domestic manufacturers in the name of national security, but those had only mixed success due to a lack of supply chain visibility. The Trump administration has vowed to try something novel, providing strict oversight over which companies qualify for offsets from the program to prevent Chinese manufacturers from gaming the market.

    Still, just a small fraction of the nearly 300,000 Americans who work in the solar industry are in manufacturing. The Solar Energy Industries Association, the solar sector’s largest trade group and a longstanding advocate of importing cheap panels, said the tariffs would only worsen electricity inflation. “America has made terrific progress rebuilding its solar manufacturing base,” Tim Pawlenty, SEIA’s chief executive, said in a statement, “but imposing tariffs and prices floors on solar materials will create new challenges for American manufacturers and raise energy costs for families and businesses.”
    Speaking of renewables the Trump administration taketh away: Yet another offshore wind developer has reached a deal with the White House to take a payment in exchange for abandoning a project. On Thursday, the German giant RWE entered into a settlement with the Department of the Interior for $1.2 billion to surrender federal leases for offshore wind projects in New York Bight and off the coasts of California and Louisiana. “After careful consideration, it was determined there is no path forward to permit these projects in the U.S. for the foreseeable future,” RWE said in a press release. “The company determined that this resolution best serves the interests of its stakeholders and allows it to direct resources toward energy projects that can be advanced with certainty.” Noting that this deal is the largest payout yet of any of the agreements the Trump administration has made to kill offshore wind projects, my colleague Robinson Meyer wrote that the price tag is “fittingly” high “because it is among the most damaging” yet. While RWE has pledged to invest in gas projects elsewhere, such as a liquified natural gas export terminal in Louisiana, RWE “well knows” that “these projects won’t help solve a coming energy shortage in New York or New England,” Rob wrote.

    Dominion Energy has long dominated Virginia’s politics as the state’s utility giant and one-time political kingmaker. Now Virginia Governor Abigail Spanberger, a moderate Democrat who soared to victory last year promising to rein in runaway electricity prices, is getting involved in the utility megamerger that could see Dominion join forces with Florida-based NextEra Energy in what my colleague Matthew Zeitlin called a “juggernaut.” In an op-ed in The Washington Post, Spanberger said she had “serious questions about what this deal would mean” and vowed to intervene by formally submitting to become a party in the case to decide whether the deal, which would create a $420 billion behemoth, violates consumer-protection rules. “I know this action is unprecedented by a Virginia governor — but so, too, is the size of this proposed merger and its potential impact on the commonwealth,” Spanberger wrote. “Virginians deserve to know that their leaders are laser-focused on ensuring that their needs are part of” the review by the State Corporation Commission, the regulator that determines whether a utility deal harms ratepayers. The move comes as state regulators order Dominion to create a process for making data centers pay more of the direct costs for their electricity use, such as sponsoring construction of substations to meet new demand, E&E News reported.
    On Capitol Hill, meanwhile, Democrats are eyeing new ways to crack down on data centers beyond backing the national moratorium progressive lawmakers proposed. Senator Ron Wyden of Oregon, the highest-ranking Democrat on the Senate’s tax-writing committee, pitched a new excise tax and the elimination of tax breaks for data center construction, NOTUS reported.
    Sign up to receive Heatmap AM in your inbox every morning:
    By the end of next year, American factories will have enough capacity to produce all the solar inverters the country needs. The U.S. once imported 90% of its large-scale inverters, including more than 30% from Chinese-headquartered vendors. But domestic manufacturers are on track to open more than 100 gigawatts of inverter-making plants by December 2027, according to a new analysis from Wood Mackenzie. The consultancy cautioned that the devices, which patch panels onto the grid, will come at a high premium than today. As I reported last week, the Federal Communications Commission banned new types of foreign inverters on the grounds that they pose a threat to the U.S. grid and the artificial intelligence buildout. “The FCC’s intent here is clear. The US government determined that the U.S.’s reliance on foreign inverters poses a national security risk, citing both cybersecurity and economic concerns,” Joe Shangraw, research analyst at Wood Mackenzie, said in a statement. “Leading manufacturers are notifying clients that they believe their products will not fall under the scope of this ban, while project owners are concerned that their existing inverters could be blocked from receiving critical firmware updates.”

    The Pentagon, meanwhile, is canceling plans to award a contract worth up to $300 million for lithium carbonate after twice delaying the deadline for bids, Inside Defense reported. The Defense Logistics Agency gave no explanation for rescinding the solicitation for a five-year, indefinite-delivery deal.
    Last month, New York City’s newly minted clean energy megaproject, a 339-mile transmission line plugging the five boroughs into Quebec’s famously cheap and clean hydroelectric system, went down unexpectedly for maintenance. Just in time for the city’s temperature to go back up, Hydro Quebec’s Champlain Hudson Power Express line completed repairs two weeks ago and started delivering electricity at full capacity again on Thursday, the province’s state-owned utility told me. “We are seeing full capacity flows now on CHPE as we’ve entered a heatwave,” Pete Rose, Hydro Quebec’s senior director of stakeholder relations in New York, told me via text yesterday. “This large volume of clean energy helps suppress wholesale electricity prices while displacing large quantities of CO2.”
    Like Germany itself, BMW’s Munich factory has, uh, seen a lot of changes since its opening in the early 1920s. At each step of the way, however, the vehicles coming off the assembly line ran on petroleum products. Not for long. The company’s oldest manufacturing facility will begin exclusively building electric vehicles starting next year. “This marks a huge turning point for the brand, as it phases out internal combustion models for its Neue Klasse EVs. It isn’t only a production milestone for the brand but a symbolic one,” reporter Nico DeMattia wrote for InsideEVs. “Munich is the site of BMW's HQ and its Bavarian home, and it's about to be fully electric.”

    Alexander C. Kaufman
    Alexander C. Kaufman is an award-winning journalist who has covered energy and climate change for more than a decade. His reporting has spanned four continents, taking readers from Indigenous villages in the Brazilian Amazon to Mongolian nomads' homes on the frigid steppe, Greenland's ice sheet to Finland's world-first nuclear waste repository. He writes the Substack newsletter FIELD NOTES from Alexander C. Kaufman and can be reached via his website, http://www.alexanderckaufman.com. A fourth-generation New Yorker, he lives in Southern Brooklyn with his wife.
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    New tariffs and price floors for imported polysilicon aim to protect U.S. producers from Chinese competition.
    Almost exactly a month after President Donald Trump’s landmark tax law effectively eliminated a key incentive for solar developers to buy panels made in America, his administration is throwing a lifeline to manufacturers behind the nation’s fastest-growing and quickest-to-deploy source of electricity.
    On Thursday afternoon, after the markets closed, the White House announced new tariffs and minimum import prices for imported polysilicon as part of an effort to prop up the domestic supply chain for the primary ingredient in semiconductors and solar panels.
    The levies come in response to complaints from polysilicon makers that the dearth of U.S. factories demanding solar-grade polysilicon made it difficult to compete with Chinese giants who benefit from selling both the solar- and microchip-grade versions of the ultra-pure industrial material derived from quartz and sand. The companies made the petition under Section 232 of the Trade Expansion Act of 1962, which gives the White House the power to restrict imports and charge tariffs on imports that demonstrably impair national security.

    The Trump administration will impose a 15% tariff on all imports and set baseline prices at which the levies would apply for each component in the solar supply chain. Polysilicon will have a minimum import price of $20 per kilogram. Wafers, the ultra-thin slice of crystalline silicon that acts as the foundation of a photovoltaic cell, and ingots, the silicon material before it’s sliced, will start at $100 per kilogram. Cells, the tiny silicon-based devices that absorb photons from sunlight and break away electrons that generate electrical currents, will have a minimum price of $0.22 per watt. Modules, the completed panels, are $0.38 a watt.
    The majority of U.S. solar factories simply assemble wafers and cells into modules, leaving them reliant on imports. But the policy won’t hit all at once. The Commerce Department is giving companies 120 days before the restrictions kick in.
    The agency will also set up an incentive program that allows manufacturers that make large capital investments in the U.S. to avoid the worst of the levies. Jeffrey Kessler, the Under Secretary of Commerce in charge of executing on 232 cases, pushed for the provision as a bid to avoid what happened when Europe attempted to protect its own solar manufacturers by setting a minimum import price meant to keep Chinese companies from flooding the market. That policy ended up subsidizing the very Chinese parent companies putting market domination ahead of profits back home.
    Avoiding that outcome is tricky under any circumstances. China and the U.S. don’t have a tax treaty, which makes it difficult for American authorities to confirm a company’s ownership structure. The surest way to seal off the U.S. market is with 100% tariffs such as those imposed on Chinese electric vehicles.

    In this case, the Commerce Department decided to allow companies with active plans to onshore the solar supply chain to apply for an exemption from the new trade rules. Ahead of the announcement, sources familiar with the talks listed South Korean giant Qcells, which just opened the nation’s largest integrated solar factory in Georgia, as one obvious example of a company that would pass muster.
    Solar manufacturers applauded the move. “Today’s decision from the White House balances the reality of where America’'s solar energy manufacturing is today while advancing our collective ambition to onshore the entire supply chain from polysilicon to finished panels in the U.S.,” Andy Park, the global CEO of Qcells, said in an emailed statement. “American solar manufacturers are ready to rise to the occasion.”
    The trade action “creates a market where wafer and cell manufacturing can happen in the United States, and companies can go fully vertically integrated,” Nick Iacovella, the executive vice president of the Coalition for a Prosperous America, a bipartisan trade association that represents manufacturing companies at every stage of the polysilicon supply chain, told Heatmap.
    “What this does is cement a key input in the supply chain that’s critical not just for chips, but for the most efficient, best-performing solar modules,” he said. “We shore up our chip supply chain at a time when there is a greater urgency to derisk from China invading Taiwan — and also during a time when the AI data center boom is driving massive demand for new energy generation, with solar driving a lot of the new capacity coming onto the grid.”
    The levies come a week after the Federal Communications Commission banned the use of new types of foreign-made inverters, the equipment needed to patch solar panels onto the grid. Analysts said the ban would have a limited effect on the solar industry, since it allows for the current models on the market to be sold. The purpose of that policy is to prop up domestic factories at a moment when Europe, despite its struggle to reindustrialize, is experiencing an inverter manufacturing boom.
    Despite those intentions, multiple industry sources who spoke on condition of anonymity told Heatmap that trade restrictions alone would likely prove insufficient to prop up a domestic solar supply chain at the scale needed to minimize imports.
    The latest data from the Rhodium Group found that new U.S. investments in solar factories peaked from the second half of 2022 through the first quarter of 2025. During that time, as Emily reported in May, the announced projects averaged more than $2 billion per quarter. At least 30 new utility-scale solar factories opened across the U.S. just last year.
    Since then, development has plummeted. Investment in new solar factories announced fell to about $350 million in the first quarter of 2026, a drop of more than 80%.

    By raising the price of panels overall, the Commerce Department is providing a particular boon to America’s leading solar manufacturer, First Solar. While the Phoenix-based panel-maker’s thin-film cell technology doesn’t use polysilicon, the price hike from the tariffs will give the company an edge by allowing the company to either raise its prices to match new industry-wide benefits or undercut its competitors. Investors in the company told Heatmap its recent bookings average sales of about $0.36 per watt.
    Another clear winner is T1 Energy, which Roth analysts say would eventually be a beneficiary once it ramps up its U.S. cell manufacturing, which is now expected to come online” next year. The company’s share price spiked more than 10% in after-hours trading, while First Solar was up more than 8%.
    “There are a lot of people in the administration who support solar,” Iacovella said. “They just don’t want a bunch of Chinese solar panels.”
    Still, he added, “this is all about the chip supply chain.” While the benefits to solar are welcome, “this is a two-for-one.”
    The Trump administration has signed a deal with RWE, a German developer, to cancel more than 3 gigawatts of offshore wind near New York and New Jersey.
    This is an edition of Heatmap Daily, an evening review of the day’s news written by our executive editor. Sign up for it here.
    There goes another one. The German energy developer RWE has signed a $1.2 billion deal with the Trump administration to give up its claims to develop offshore wind farms in New York, California, and Louisiana. The Trump administration has now bought out 12 offshore wind leases, paying energy developers $3.93 billion for the privilege of not developing renewable energy along the American coastline.
    Today’s is the largest payout yet — and fittingly so, I suppose, because it is among the most damaging. As part of the deal, RWE abandoned its plans to build a more than 3-gigawatt offshore wind farm in the New York Bight. When RWE first leased that site in 2022, it paid $1.1 billion for it — the biggest offshore wind lease auction ever held in the United States.

    RWE promised that the resulting facility, dubbed Community Offshore Wind, would generate 700 jobs and $3 billion in local economic activity. It would have been close enough to New Jersey and New York that its power could have flowed to either state, although no final power contract was ever signed. Now all of that is kaput.
    In the eyes of some critics, RWE had overpaid for that lease — and in that context, the Trump administration has I suppose done the German developer a favor, bailing them out from a bad investment in a legally dubious manner. (New York’s attorney general is suing to block a similar payout to Total Energies.)
    But even beyond that context, there remains one big problem with these deals — an issue even more glaring now than when Trump started targeting wind projects last year. It is that the United States — and especially the Northeast, and especially New York — needs as much electricity as it can get right now. The Trump administration is striving to bring new power demand online in the form of data centers, but cutting off new sources of generation if they fail to meet its aesthetic standards.
    Anticipating this sensitivity, RWE’s press statement announcing the deal goes on to list major energy projects that it’s committed to in the United States. These projects all involve, coincidentally (or not), fossil fuels: They include a $900 million stake in a Louisiana liquified natural gas export terminal and a $300 million reservation for new natural gas turbines. (RWE implies, but doesn’t say outright, that it will build 15 natural gas peaker plants with these turbines.) When we asked for more details about these projects, and whether we should anticipate anything new, RWE immediately got back to us: “We are unable to discuss further details on the investments.”

    Yet as RWE well knows, these projects won’t help solve a coming energy shortage in New York or New England. For one, the Louisiana LNG export terminal is, well, an export terminal: It will help move energy out of the country, not generate more of it at home. Those exports might boost Americans’ fortunes in a vague, long-term, balance-of-payments way, but they won’t keep a lid on anyone’s power bills (which, by the way, just hit an all-time high). More importantly, the 15 peaker plants that RWE cites are largely going to be built … in other regions of the country. If the lights go out on Houston Street, a new gas plant in Houston can’t help.

    Americans paid $217 on average for electricity last month, according to Heatmap and MIT’s Electricity Price Hub.
    July is typically the season of high electricity bills, and this year is no exception.
    Nationally, the average electricity bill spiked to $217, an all-time high, according to new data from Heatmap and MIT’s Electricity Price Hub. That’s up from $177 in June, and $215 last July. Meanwhile, electricity rates were 19 cents per kilowatt-hour, virtually unchanged from June and slightly higher than July of last year.
    Throughout the country, many ratepayers are seeing higher costs and charges in the portion of their bill covering the cost of power generation.
    Once again, some of the most notable electricity price and bill trends were seen in the mid-Atlantic region, the heart of the data center boom and the anchor area of the PJM Interconnection. The region also includes Virginia, where Florida utility and energy developer NextEra is attempting to acquire the commonwealth’s dominant utility, Dominion.
    In July, Dominion customers saw typical generation charges rise to $155 a month, up from $124 a year ago. Overall bills for Dominion customers were about $259 this past month.

    The higher bills are in part due to the “fuel charge rider” that went into effect this past month to help recover about $1 billion in additional generation costs claimed by the utility. Those charges stem in part from higher fuel costs this past winter, when natural gas prices spiked to their highest level since the winter of 2022-23, Dominion officials said in a filing to the state’s utilities regulator. The MIT researchers estimate that the fuel charge added around $53 to July bills, up $12 from July of last year.
    In neighboring Delaware, bills were $216 a month in July, a record high, while prices were around 19 cents per kilowatt-hour. Customers of the state’s main utility, Delmarva Power, saw a near 20% hike in the supply charge in their standard service offerings, as prices rose from around 16 cents per kilowatt-hour from last year.
    The Delaware Public Service Commission voted at the beginning of last month to allow an interim rate increase of about $3 per month for the typical customer, which went into effect July 9. Soon after, Delaware Governor Matt Meyer signed a law giving the state’s regulators more discretion to reject putting certain utility costs into the rate base and thus limit subsequent price hikes requested by utilities. The governor’s office described the law as a mechanism “to prioritize prudent spending over unchecked cost recovery.”

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    Posted in Renewables | Leave a comment

    RV owner cleaned solar panels, then found strange X-shaped marks as output fell to 533W of 800W – Yahoo Autos

    A routine attempt to clean the solar panels on an RV turned into a bigger concern for one owner after they spotted unusual X-shaped marks inside several panels and saw the system producing far less power than expected.
    For people who rely on solar to keep batteries charged and appliances running, that kind of drop can be more than a minor inconvenience.
    In a Reddit post, the user described seeing unusual X-shaped markings on several solar panels attached to the roof of their RV, reporting that the 800-watt system was only reaching 533 watts — even with clear skies and full afternoon sun.
    Because the marks were beneath the panel surface, the poster said they could not be wiped away. They also noted that the panels were less than a year old and showed no visible physical damage, which led them to worry the issue could be the panel itself.
    Solar panels are generally built to withstand years of outdoor exposure, so visible internal changes paired with reduced output can indicate a temporary performance issue, a manufacturing defect, or an early equipment failure.
    One commenter suggested the issue was microcracks in the solar cells, also known as snail trails. Fortunately, these don't always cause a loss of production, but it's wise to contact an expert for an inspection if this occurs.
    Meanwhile, others noted the output wasn't anything particularly unusual, and the original poster said they would monitor energy production more carefully.
    For homeowners, going solar remains one of the best ways to save money on home energy. If you're considering making the switch, EnergySage offers free tools that can help you get quick solar installation estimates and compare quotes.
    Whether mounted on a house or an RV, solar panel systems are designed to reduce reliance on costly outside power sources. So when a setup produces far less energy than expected, owners may have to rely more heavily on shore power, the grid, or gas generators, leading to higher expenses and added hassle.
    Because reliable solar can help cut fuel use and reduce the air pollution associated with burning gasoline or diesel for backup power, catching problems early helps protect both the financial value of a solar investment and the environmental benefits that come with using more renewable electricity.
    If your solar panels show unusual marks or a sudden drop in output, the first step is to document what you're seeing. Photos, production readings, weather conditions, and panel age can all be useful when contacting the manufacturer, seller, or installer about a warranty claim or technical inspection.
    EnergySage's free services can also take much of the guesswork out of shopping for solar. With EnergySage's help, the average person can save up to $10,000 on solar purchases and installations. That kind of side-by-side comparison can make it easier to spot quality differences and avoid overpaying.
    Meanwhile, EnergySage's solar map shows the average cost of a home solar panel system by state level, and it provides details on solar panel incentives based on location. These resources can help you get the best price for rooftop solar panels and access available incentives.
    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. If you want to explore that route, EnergySage offers free tools with information about home battery storage options, including competitive installation estimates.
    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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    Trump Unveils Trade Actions to Protect Key Solar and Semiconductor Material – gvwire.com

    Trump Unveils Trade Actions to Protect Key Solar and Semiconductor Material  gvwire.com
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