Noria Energy launches single-axis tracker for floating solar applications – pv magazine Global

California-based floating solar developer Noria Energy has launched Airon, a single-axis tracker designed specifically for floating photovoltaic (FPV) installations. The company claims the system generates up to 20% more electricity than conventional fixed-tilt floating arrays while matching their overall installed cost.
The launch marks Noria’s transition into an independent equipment technology company. As part of the commercial roll-out, distributed solar developer Sunrock Distributed Generation and floating-structure manufacturer AccuSolar have joined as strategic investors and partners. AccuSolar will serve as Noria’s domestic manufacturing partner, while Sunrock will provide project co-development and financing.
Unlike ground-mounted utility projects where single-axis trackers dominate, floating solar systems historically rely on fixed-tilt mounting platforms to manage aquatic environments. Airon adapts horizontal single-axis tracking for water bodies using a low-profile architectural design, passive stabilizers, and automatic stowing mechanisms to endure wind shear, dynamic wave actions, and fluctuating water levels.
By increasing yield per panel without adding nameplate capacity, single-axis tracking on water provides higher energy density, serving as a crucial factor for project sites constrained by reservoir surface area or localized grid interconnection limits.
“Floating solar can turn underused water surfaces into productive energy assets without competing for valuable land,” said Alex Mayer, CEO of Noria Energy. “With Airon, we are bringing the energy-production advantages of solar tracking to the water, giving customers up to 20% more energy at the same installed cost as a fixed-tilt system.”
Noria engineered the Airon system around a horizontal single-axis design, standardizing on a 1-in-portrait orientation while offering a 1-in-landscape configuration as an option. Built for compatibility with standard crystalline silicon modules, the tracker uses floating torque tubes moored to a perimeter float anchored to the water bed, alongside passive, self-righting architecture for stability. The equipment accommodates ground coverage ratios between 30% and 66%, offers standard tracking ranges of 20 degrees with an available 30 degrees expansion, and supports up to four electrical strings per row.
The underlying hardware ecosystem features a slew drive mechanism powered by a 24 V brushed DC motor, with system auxiliary power supplied by string power or dedicated slim panels. Hardware communications utilize individual row tracker controllers routed through regional gateways (managing up to 100 rows each) which interface with a main controller handling up to four gateways. To guard against environmental fatigue, the system triggers automatic wind stow protection once wind speeds exceed 35 mph.
Noria previously deployed a 50 kW floating tracking system at the Fairmount Reservoir in Golden, Colorado, in 2025 to test operational limits in real-world utility conditions.
The company plans to deploy its first commercial pilot in late 2026. Shipments of the fully certified commercial Airon system to customer sites are scheduled to begin in mid-2027. Sourced entirely through a domestic supply chain, the hardware is structured to assist developers seeking U.S. domestic content bonuses under federal clean energy tax incentives.
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Flare-ups, smoke still expected as Summerside solar farm fire continues into second week – CBC

Flare-ups, smoke still expected as Summerside solar farm fire continues into second week  CBC
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France races to find a thin-film solar recycler before a 16,500-ton waste surge – Yahoo

France races to find a thin-film solar recycler before a 16,500-ton waste surge  Yahoo
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Scientists develop underwater solar cells that work 10 metres below the ocean surface and power robots – The Times of India

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Croatia Temporarily Closes €38 Million RE Subsidy Call – TaiyangNews

Croatia’s FZOEU announced €38 million in financial support for renewable energy and energy storage installations for households
It temporarily closed the call only two days later, after receiving 9,320 applications
Applications submitted will now be assessed, with eligible households receiving subsidies for PV systems, heat pumps, and battery storage 
Croatia’s Environmental Protection and Energy Efficiency Fund (FZOEU) temporarily closed a €38 million subsidy call for renewable energy and energy storage systems after receiving 9,320 applications within two days.  
FZOEU opened the call on September 2, 2026, offering subsidies for rooftop solar PV systems, heat pumps for self-consumption for households, and – for the first time – battery energy storage systems (BESS).
The call was temporarily closed at noon on September 4, 2026, because of strong public interest.
According to the agency, the 9,320 applications it received requested funding for about 8,300 solar PV systems and 1,324 heat pumps, while 1,460 applications also included battery storage.
Under the program, eligible households could receive subsidies covering up to 50% of eligible investment costs. Households at risk of energy poverty could receive up to 70% support. “The energy transition must be available to the widest possible circle of citizens, including those for whom investing in better quality heating or own electricity production would not be available without additional support,” emphasized FZOEU Director Luka Balen.
For solar PV systems, financial support is available up to €6,000, capped at €600/kW, while households at risk of energy poverty can receive up to €8,400, or €840/kW. For battery storage systems, the respective support levels are up to €5,600, or €350/kWh of capacity, and €7,480, or €490/kWh. 
FZOEU has not indicated that the program itself has been canceled. Rather, the application window was temporarily closed after the high number of submissions. It will now process the applications received under the €38 million call.
“Such a large response once again confirms the growing interest of citizens in their own energy production and increasing the energy independence of households,” stated FZOEU.
Through its previous programs, the fund has co-financed the installation of around 15,000 solar PV systems across Croatia. FZOEU plans to launch another call within the next two months for citizens who installed and commissioned their PV systems between December 2025 and July 2026.
In March 2026, following the Middle East crisis, Croatia announced a €450 million energy support package including €30 million for residential PV, heat pumps, and battery storage, with up to 50% reserved for households. Another €30 million was also reserved for farm-based solar projects (see Croatia Pledges €40 Million For Solar, Storage, & Heat Pumps).  
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Stäubli Expands BosCon Portfolio with Permanent Protective Caps and Panel Receptacles for Enhanced Protection and Performance – StreetInsider

Stäubli Expands BosCon Portfolio with Permanent Protective Caps and Panel Receptacles for Enhanced Protection and Performance  StreetInsider
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US Senate hearing sounds alarm as digital grocery tags open door to personalized prices – thecooldown.com

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“The data that powers the surveillance pricing engine is estimated to be a $700 billion industry by 2030.”
Photo Credit: YouTube
A content creator is warning that grocery store technology like digital shelf labels, shopper-tracking systems, and pricing algorithms could make everyday shopping a lot less predictable and a lot more expensive. 
This kind of tech could let companies charge different prices for different customers. The issue has raised so much concern that the U.S. Senate recently held a hearing on the topic.
Electronic shelf labels are digital price tags that stores can update remotely in a matter of seconds.
In a recent video, a creator who posts under the name A Homestead Journey (@ahomesteadjourney) described how this rapidly spreading technology came up during a U.S. Senate hearing on artificial intelligence surveillance pricing chaired by Senator Josh Hawley in August.
Critics of digital pricing and customer tracking warn that the practices, largely driven by AI, could be used to charge different customers different prices, potentially causing some individuals to pay more for an identical product purchased at the same location. The technology might even allow a retailer to change a product’s price between the time a shopper grabs an item off the shelf and when they reach checkout.
In her video, the creator also pointed to Senate testimony about personalized algorithmic shopping. Under the practice, retailers rely on information about a customer’s shopping history, location, and other personal data to estimate the highest price a specific customer might be willing to pay for a given product.
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At the hearing, Hawley said, “AI surveillance pricing is the unholy trinity of everything Americans hate: spying on people, ripping them off, and taking away jobs.” The senator asserted that the practices could impact jobs in brick-and-mortar stores.
The hearing also touched on how valuable shopper data has become to big business.
“The data that powers the surveillance pricing engine is estimated to be a $700 billion industry by 2030,” economic sociologist Lindsay Owens said in her testimony.
Replacing paper tags with digital displays can seem like a simple store upgrade. The concern raised in A Homestead Journey’s video is how easily those tags can work alongside surveillance tools, loyalty programs, and machine learning systems designed to maximize profit at the shopper’s expense.
On top of the financial implications, privacy issues may be just as significant. According to the video, the American Civil Liberties Union previously asked America’s 20 largest retailers if they scan customers’ faces. Most declined to answer.
Many consumers already deal with surge pricing when they book rideshares or buy concert tickets. If that same pricing logic reaches staple items like bread, eggs, and milk, families already under financial pressure might have even less ability to anticipate their expenses and stick to a budget.
Some states have already started responding. For example, as the video pointed out, New Jersey’s Fair Price Protection Act, signed in July, bans surveillance pricing at grocery stores. Maryland and Connecticut have passed similar laws.
Still, A Homestead Journey argued that such laws do not fully solve the problem. In both Maryland and Connecticut, loyalty-program pricing is exempted, even though those same programs help create the shopper profiles that make individualized pricing possible.
The creator’s most practical suggestion was perhaps its simplest: take a photo of the shelf tag before putting an item in the cart, then compare that image with the receipt before leaving. If the two prices do not match, shoppers can ask for a manager to explain the pricing disparity. 
Commenters were quick to condemn the practices on both pricing and privacy grounds. 
“This is digital stalking, followed by robbery!” exclaimed one. 
For the creator, one of the scariest aspects is that these may not just be examples of things that could happen in some dystopian future. These practices are already here. 
“Here’s my take, guys: This isn’t a conspiracy theory anymore,” A Homestead Journey said. “This is a Senate hearing, real testimony, real dollar figures, real patents on file, and real state laws already passed.”
The information shoppers see on shelves and packaging seems to be getting easier to alter and harder to verify for a lot of different reasons. These examples focus on greenwashing rather than dynamic grocery pricing, but they show how labels, branding, and store messaging at chain stores can shape what customers believe they are buying:
• At Target, greenwashing in everyday products can make eco-friendly claims harder to confirm.
• At Costco, the most blatant greenwashing showed how labels can steer shoppers wrong.
• Across online orders, sustainable packaging claims can blur what product labels actually promise.
• In retail aisles, companies fool consumers when branding outruns what the labels support.
These examples show that concerns about digital pricing are part of a bigger trust problem in retail, but consumer awareness and pushback could help inform lawmakers’ actions to regulate the practices behind them.
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France races to find a thin-film solar recycler before a 16,500-ton waste surge – The Cool Down

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Any system will need to process modules from multiple manufacturers within the same technology family.
Photo Credit: Soren
France is preparing for a wave of hard-to-recycle solar panel waste, and it is looking for a homegrown solution, according to pv magazine.
Soren, the organization that oversees collection and processing of end-of-life photovoltaic modules in the country, opened a search for companies that can develop a domestic recycling pathway for thin-film solar panels.
The move has highlighted the need for governments and industries to establish plans for end-of-life solar panels and other renewable energy equipment. Proper disposal can keep solar panels out of landfills and make certain materials available for reuse.
When it comes to solar, the crystalline-silicon panels that dominate the market already have a disposal pipeline. However, thin-film modules require a different approach, which has not yet been put in place, pv magazine reported. 
The search seeks to handle cadmium telluride and copper indium gallium selenide modules, while the ability to process amorphous silicon would be a plus. Applications are due by late October.
Any system will need to process modules from multiple manufacturers within the same technology family.
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Whichever organization Soren selects will have its work cut out. Many tons of thin-film modules are already awaiting proper disposal.   
Once a processing route is operating, Soren expects an early priority to be a 1,300-tonne batch of CdTe modules from German manufacturer Calyxo, the magazine noted.
To estimate the coming need, Soren commissioned the Becquerel Institute to forecast thin-film panel treatment volumes in France and across Europe. That work relied on published research as well as interviews with industry participants, including module manufacturers, project developers, and waste management companies, according to pv magazine.
Based on the available data, the researchers forecasted rapid growth in volume. 
For CdTe modules in France, the study projects that Soren could face processing volumes of 770 tonnes in 2027, 2,660 tonnes in 2030, and 15,000 tonnes (16,535 tons) in 2037.
For CIGS modules, the study puts the stream at 430 tonnes in 2027, 1,090 tonnes in 2030, and 2,900 tonnes in 2037, per pv magazine.
Though the challenge is daunting, Soren’s search for a processor for thin-film solar modules highlights the importance of implementing cradle-to-grave lifecycles for renewable energy equipment. 
Though renewable energy sources like solar, wind, and hydro offer a number of advantages when it comes to public health and the environment, they still produce some waste. To maximize the benefits of a cleaner-energy future, governments and industry need to come together to ensure that materials are reused or recycled as well as disposed of properly. 
At the consumer level, individuals can make sure that they recycle or properly dispose of their own products, from glass and aluminum cans to hazardous household chemicals and e-waste.
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Raana Semiconductors to launch 12-inch CZ ingot machine for Indian solar market – pv-tech.org

Indian crystal-growth equipment manufacturer Raana Semiconductors is targeting the launch of a commercial-grade 12-inch Czochralski (CZ) ingot growth machine within the next ten to 12 months, with the company aiming to sell to India’s solar cell and module manufacturers
The Hosur, Tamil Nadu-based company said its machines could support around 10GW of solar cell production capacity over the next three years as Indian manufacturers increasingly look to move upstream into ingot and wafer production.

Raana is also establishing a 40,000 square foot manufacturing facility in Hosur to support the 12-inch machine programme. The company said its existing CZ equipment has approximately 70% local content, with further localisation planned at the new facility.
“We are hoping to manufacture and supply a capacity of machines that can support cell production of roughly 10GW in the next three years,” said Rajasekar Elavarasan, founder and CEO, Raana Semiconductors.
“Indian cell and module makers are investing in ingot and wafer capacity, and they need equipment partners who can deliver, service and upgrade machines locally. Our 12-inch CZ platform is built for exactly that.”
The CZ process is widely used to produce monocrystalline silicon ingots, which are subsequently sliced into wafers for solar cells and semiconductor applications. According to Raana, China currently accounts for more than 90% of the CZ machines supplied to the solar industry.
The planned machine comes as Indian solar manufacturers expand into upstream manufacturing to reduce reliance on imported wafers.
“The 12-inch platform is the culmination of over a decade of building CZ systems for some of India’s most demanding customers in defence, atomic energy and national laboratories,” said Avinash Kumar, head of technology, Raana Semiconductors.
“Scaling from 6-inch to 12-inch ingots at solargrade throughput demands upgraded hot-zone, controls, electrical and mechanical design to ensure defect free 12-inch mono-crystalline silicon ingot growth. Our engineering team has designed the machine ground-up for high-yield, low-oxygen monocrystalline growth, and we are now moving into qualification with early customers.”
India’s Ministry of New and Renewable Energy (MNRE) has proposed adding solar ingots and wafers to the Approved List of Models and Manufacturers (ALMM) from 1 June 2028. If implemented, the measure could further encourage domestic investment in ingot and wafer manufacturing.
Raana said it is currently seeking to secure an order for approximately 2GW of machine capacity from a major Indian solar manufacturer. Based on orders of this type, the company is targeting revenue of around INR3 billion (US$34 million) by FY2028.
The company currently has more than 40 CZ machines deployed in India, covering 2-, 4- and 6-inch formats. These systems are being used by customers in defence, atomic energy and national laboratories, as well as for the production of specialty materials including lithium niobate and germanium.
The company said it intends to supply CZ equipment to GW-scale solar manufacturers over the next few years and, further down the line, supply semiconductor wafers to semiconductor fabs within the next four to five years.

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How to get more from your solar panels on sunny days – independent.co.uk

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When the sun is shining, your solar panels could be generating much more electricity than your home needs at that moment. The question is what happens to the excess.
If you have a battery, it can be stored for later. If you have an export tariff, you may be able to sell it back to the grid. But one of the simplest ways to get more value from your solar panels is to use more of the electricity yourself while it is being generated.
If you can do this, the savings can be significant. Phil Steele, future technologies evangelist at Octopus Energy, says the exact benefit depends on the size of your solar panel system and how much electricity your household consumes – but in the UK a typical home could potentially save more than 40 per cent on its annual electricity bill with solar panels, particularly when paired with a battery.
From changing when you run the dishwasher to charging an electric car, a few adjustments to your routine can help you make the most of particularly sunny days so that you start getting more from your solar panels.
Use our comparison tool to find free quotes from leading UK solar panel installers.
Solar panels generate electricity whenever there’s sufficient daylight, but production typically rises through the morning before falling again later in the day.
That means it can make sense to move electricity-intensive jobs you were going to do anyway into periods when your panels are producing plenty of power.
Running the washing machine or dishwasher during the day rather than in the evening, for example, could allow more of the electricity they consume to come directly from your solar panels rather than the grid.
Timers, smart plugs and connected appliances can make this easier, particularly if nobody is at home during the day.
But there’s little benefit in simply consuming more electricity just because it happens to be sunny. Electricity exported to the grid can have a value too, so the aim is to shift necessary consumption rather than invent new uses for your solar generation.
Hot water can provide another opportunity to make use of excess solar generation. Steele schedules his own heat pump to produce hot water during the middle of the day.
“I’ve got our heat pump scheduled to do hot water from midday till 3pm,” he says. On a sunny day when The Independent spoke to him, his solar panels were generating 3.6kW, with around 3kW being used by the heat pump.
“So 3kW is producing free hot water for me effectively at the moment,” Steele says.
What’s more, households with a hot-water cylinder may also be able to use a solar diverter, which sends surplus solar electricity to an immersion heater rather than exporting it.
The principle in both cases here is similar: use surplus electricity to heat water now that can be used later.
An electric car can also provide somewhere for surplus solar power to go.
Simply charging an EV during daylight hours can increase the proportion of home-generated electricity that you use yourself, while some compatible chargers and energy-management systems can adjust charging according to how much surplus solar electricity is available.
Steele says his own system allows him to choose whether solar generation goes towards his home battery or his car.
“We can prioritise the car being charged from the solar rather than the home battery if I wanted to because it’s all integrated,” he says.
Exactly how much of an EV’s charging can be covered by rooftop solar will depend on the size of the solar array, how much electricity it’s producing and whether the vehicle is at home during daylight hours.
One limitation of rooftop solar is that homes often produce the most electricity when household demand is relatively low.
A home battery can bridge that gap by storing surplus generation during the day and supplying it later, when the panels are producing less or nothing at all.
“The moment you’ve got solar, you’re obviously generating your own energy and you are storing any excess energy,” Steele says. “I much prefer it when batteries are paired with solar for that reason because you’re storing your own energy to then use later on.”
Steele’s own home demonstrates how this can work on a particularly sunny day, explaining that his 10kWh battery had already reached full charge during the morning.
“I’m going to run the house off-grid overnight until tomorrow because it’s in this sunny weather,” he said.
A battery won’t necessarily make financial sense for every household, though. Its value will depend on factors such as the cost and capacity of the battery, the size of your solar system, your home’s electricity consumption and the tariffs you’re using.
You don’t necessarily need to guess when your panels are generating the most electricity. Many solar inverter and battery systems provide an app or online dashboard showing generation, household electricity consumption and, depending on the setup, how much electricity is being imported, exported or stored.
Checking this can help you understand your own system rather than relying on a fixed rule about when to use electricity. And generation can change surprisingly quickly when the conditions change.
“I’ve stood and watched the real-time solar generation of a large solar system,” Steele says. On a partly cloudy day, he saw its output “swinging between half its generation and its full generation within a minute as a cloud went over.”
Watching your own generation over several days can help reveal when your particular roof tends to produce the most power and how changes in cloud cover affect it.
Using as much solar electricity as possible yourself isn’t always automatically the most profitable option.
If you receive payment for exporting electricity to the grid, every kilowatt-hour you use yourself is also one you aren’t exporting.
The calculation therefore depends partly on the difference between what you pay to import electricity and what you receive for exporting it.
For most households, the sensible approach isn’t to waste electricity simply because it’s being generated, but to shift consumption that would otherwise happen later in the day.
Sunny days are also a useful opportunity to check that your solar panels are performing roughly as they’re expected to.
If generation appears unusually low compared with similar conditions in the past, it may be worth investigating whether shading, debris or a problem with the system is affecting its performance.
Trees and other vegetation can grow enough over time to create shading that wasn’t present when you first had the system installed. Also, heavy dirt or bird fouling can also reduce the light reaching the panels.
But that doesn’t mean you should climb onto the roof to clean your solar panels yourself. If the panels appear to need cleaning or inspecting, using a suitably qualified professional is the safer approach.
You can’t make your solar panels generate more sunshine, but you can decide what happens to the electricity they produce.
Running flexible appliances during periods of high generation, heating water, charging an EV and storing spare electricity in a battery can all increase the amount of solar energy your household uses itself.
A simple way to think about a sunny day’s generation is to use what you need, store what you can and export the rest.
Join thought-provoking conversations, follow other Independent readers and see their replies
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Installed capacity of photovoltaic systems in Germany from 2005 to 2025 – Statista

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March 2026
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2005 to 2025
As of February 2026
The figures are partly preliminary.
The cumulative electric capacity of all grid-connected photovoltaic systems in Germany amounted in 2025 to around ***** gigawatt-peak. Bavaria is by far the federal state with the most installed capacity, followed by Baden-Württemberg and North Rhine-Westphalia. The city-states Bremen, Hamburg, and Berlin have the lowest nameplate capacity for photovoltaic systems.

The conversion of light energy into electrical energy using solar cells describes electricity generation by photovoltaic systems. In Germany, the installed capacity of photovoltaic systems is steadily increasing. This development is also visible globally: about one quarter of the total installed capacity worldwide is located in China. It is followed by the United States, Japan, and India, which have significantly less installed photovoltaic capacity in comparison.

Alongside photovoltaics, hydropower is also among the renewable energy sources. In Germany, wind energy is particularly important. Compared with other European countries, electricity generation from wind energy is highest here, in a European comparison. They are followed at a distance by Spain and France.
Monthly installed capacity in solar PV plants Germany 2026
Installed capacity of EEG-remunerated installations in Germany 2024
Renewable energy power plants' installed capacity Philippines 2012-2024
Installed capacity of renewable energy power plants Philippines 2024, by source
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5 Hurdles Hampering the Growth of Microinverters in India – saurenergy.com

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5 Hurdles Hampering the Growth of Microinverters in India Photograph: (AI)
India’s rapidly expanding residential rooftop solar market is creating a potential opening for microinverter technology, but the segment remains at a relatively nascent stage. Despite advantages such as module-level power optimisation, lower DC wiring requirements and greater flexibility on complex rooftops, microinverters continue to face a combination of cost, certification, installer and market-structure challenges.
Recent developments reported by Saur Energy indicate that several global inverter companies are now actively targeting India’s residential market. Deye showcased its microinverter range in 2025, while SolaX Power announced plans to introduce 1–2.2 kW microinverters for the Indian market. Hoymiles has also been expanding its microinverter distribution and installer network in India. Enphase has already worked with several clients on the technology. 
Yet, wider adoption is still some distance away. Here are five key hurdles holding back the technology.
The biggest hurdle remains economics. Microinverters are installed at the module level, rather than using one centralised/string inverter for a group of modules. This brings benefits in terms of module-level optimisation and system flexibility, but it also means a greater number of power-electronics units have to be deployed.
Industry discussions have historically identified price as one of the biggest barriers. Often the microinverters could cost roughly two to three times as much as conventional string inverters at the inverter level making it a ‘premium product’. That premium is particularly significant in India’s residential rooftop market, where customers remain highly price-sensitive and where the initial system cost is often more important than lifetime optimisation.
Deye itself told Saur Energy in 2025 that its microinverters come at a higher cost, although the company argued that the technology provides additional benefits.
This creates a fundamental problem: the customer has to pay more upfront for benefits that may be realised through higher generation, better performance under shading and greater system flexibility over the life of the plant.
Microinverters require a somewhat different installation and commissioning approach from conventional string-inverter systems. Installers have to understand module-level power electronics, communications, monitoring architecture and troubleshooting across multiple inverter units. India’s rooftop solar market, meanwhile, includes a large number of small EPC companies and installers with varying levels of technical expertise.
Industry research identifies installer training and awareness as a specific constraint for microinverter adoption in India. Effective deployment requires knowledge of communication-bus configuration, monitoring platforms and grid-protection requirements, which is not uniformly available across the installer base.
This matters because installers are effectively the technology gatekeepers in the residential rooftop market. If an installer is more comfortable with a conventional string inverter, there is little incentive to recommend a newer architecture unless the customer specifically asks for it.
Saur Energy’s reporting also captures this early-stage nature of the market. Deye’s India management said in 2025 that the technology was still at a nascent stage and that it remained to be seen whether installers and customers would show sufficient interest.
Certification is another practical barrier to scaling. This illustrates a broader challenge for relatively new inverter architectures entering the Indian market: products need to satisfy India’s safety, grid-interconnection and certification requirements before manufacturers can build meaningful volumes.
India has also been strengthening inverter standards. The Bureau of Energy Efficiency introduced a voluntary Standards and Labelling programme for grid-connected solar inverters, while eligible products must comply with relevant BIS safety requirements.
For manufacturers, certification is therefore not simply a one-time market-entry issue. Products have to be designed around Indian grid conditions and regulatory requirements, while companies must also maintain the required testing and compliance infrastructure.
The Indian rooftop market has developed around a relatively straightforward proposition: solar modules connected to a string inverter, with the system designed around the customer’s sanctioned load and available roof area. Microinverters are most compelling where there is partial shading, multiple roof orientations, restricted space or a need for module-level monitoring and optimisation. But not every rooftop has these characteristics.
This limits the immediate economic case for switching an otherwise simple rooftop installation from a string inverter to microinverters.
The technology therefore has to compete not only on efficiency but on total system value. Saur Energy reported that Deye sees its microinverters primarily serving smaller rooftop systems, while SolaX has similarly positioned its planned products around small residential and balcony-solar applications.
At the same time, India’s inverter market remains overwhelmingly centred on conventional grid-connected inverter architectures. BEE’s 2024 announcement said grid-connected solar inverters accounted for about 80% of the overall solar inverter market in 2022-23.
Microinverters ultimately depend on the health of the rooftop solar market itself. And India’s rooftop segment continues to face policy, financing and implementation bottlenecks. Net-metering rules, capacity limits, approval processes and interconnection procedures vary between states and DISCOMs. Industry research has identified this regulatory fragmentation as a constraint on microinverter adoption because suppliers and installers have to navigate different technical and commercial requirements across markets.
The broader rooftop market is also dealing with financing and execution challenges. Recent reporting on PM Surya Ghar has highlighted delays in loan approvals, documentation problems and reluctance among some lenders and utilities as factors slowing rooftop installations.
For microinverters, this creates a double disadvantage. The technology already carries a higher upfront price, while the underlying residential customer may simultaneously face difficulty obtaining affordable financing for the entire rooftop system.
The hurdles do not mean microinverters lack a market in India. In fact, the opposite may be emerging as residential rooftop systems become more diverse. PM Surya Ghar is pushing the market towards millions of smaller rooftop installations, creating potential demand for compact, modular and digitally monitored systems. 
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Solar panels added to USS Cincinnati Memorial Pavilion; expected to help power local grid – WKRC

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by WKRC
WEST CHESTER TOWNSHIP, Ohio (WKRC) – Work is continuing at the U.S.S. Cincinnati Memorial Peace Pavilion in West Chester, where new solar panels have been installed on a full-size replica of the submarine.
The panels represent the portion of the hull that is visible when the submarine is on the surface.

Work is continuing at the U.S.S. Cincinnati Memorial Peace Pavilion in West Chester, where new solar panels have been installed on a full-size replica of the submarine. (Provided)

Work is continuing at the U.S.S. Cincinnati Memorial Peace Pavilion in West Chester, where new solar panels have been installed on a full-size replica of the submarine. (Provided)

In addition to providing shade for visitors, the solar installation is expected to power an AI platform and interactive software designed to deliver STEM education content at interactive kiosks using QR codes in the future.
The project is also expected to generate enough electricity to sell some power back to the local grid, with the proceeds helping fund upkeep at the pavilion.
2026 Sinclair, Inc.

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UGL, an ACS Unit, to Build 72 MW Solar Plant in Australia – energynews.pro

UGL, an ACS Unit, to Build 72 MW Solar Plant in Australia  energynews.pro
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Why some solar power systems with batteries won't work in a blackout – rnz.co.nz

People installing solar power systems with batteries on their homes, hoping to avoid the disruption of a power cut, are being told to check with the installer that the battery can provide that protection.
About 10 percent of those installed in recent years may not have the capacity to deliver it, industry experts say.
Kristy Hoare, managing director of My Solar Quotes, told RNZ this week that about half of people getting a quote for solar were including a battery. She said, although that could double the cost of the system, many people wanted them for energy independence or as a backup during outages.
But a spokesperson for Rewiring New Zealand said having a battery system that would flick on in a power cut was something that needed to be built into the installation process, and people would have to request it.
They needed to be able to disconnect from the grid in the event of an outage.
"Battery systems do this automatically in a lot of homes and buildings, but you need to ask for it specifically. The part is called an automatic transfer switch. It detects the grid going down and cuts you off from it. You have to be cut off because feeding energy back onto a dead grid is dangerous for the people working on it."
Gareth Williams, chief operating officer at Sustainable Energy Association of New Zealand, said it would be disappointing if people did not realise their system was not set up to cover a power cut because it was something that installers should discuss with customers. He said sometimes an extra piece of hardware was needed, and in all cases there would be additional costs to connect to the system.
Powerswitch general manager Paul Fuge.
Supplied / Consumer NZ
Powerswitch general manager Paul Fuge agreed.
"Any reputable installer should be discussing this with customers during the purchase and installation process, so it shouldn't come as a surprise after the system has been commissioned.
"It's also worth noting that batteries remain relatively expensive and can almost double the cost of some solar installations. For some households, the economics of adding a battery may not yet stack up. Regardless they may be willing to pay the additional cost because of the resilience and backup power a battery can provide, particularly in areas that experience frequent outages or where people are concerned about the impacts of natural disasters.
"As extreme weather events become more common and power outages potentially increase, we would expect to see more households installing battery systems for resilience as well as for any economic benefits they may provide."
Hoare said all solar battery models on the New Zealand market could now provide power during an outage.
Kristy Hoare, managing director of My Solar Quotes.
Supplied / My Solar Quotes
"A few years ago, some solar battery options completely lacked this function, but those models are no longer available."
She said some batteries required additional components and the system had to be specifically installed.
"Given how useful backup power is during an outage, and that the additional hardware is generally only part of the overall system cost, it would make little sense to install one of these batteries without enabling backup."
She said she would estimate about 90 percent of systems had backup power available.
"Going forward from this year, closer to 100 percent of batteries will have backup."
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Grab the expanded 572Wh EcoFlow RIVER 3 Plus power station bundle back at a $319 Amazon low ($180 off), more – 9to5Toys

Amazon is currently offering the EcoFlow 572Wh RIVER 3 Plus with Extra Battery 300 back down at $319 shipped, which beats out the brand’s direct website pricing that has it keeping to the full $499 rate. Since mid-July, it’s been bouncing between $499, $399, and gone as low as $319 in 2026 here, while the direct website’s Prime Day Sale in June saw it fall to $303. You’ll be getting a $180 markdown with this deal, landing it back at the lowest price we have tracked at Amazon. You can also check out the full Home Preparedness Month Sale lineup here, which is offering up to 50% discounts and bonus extra savings, too.
This RIVER 3 Plus power station bundle (also known as the RIVER 3 Max) starts you off at a 572Wh LiFePO4 capacity rather than the RIVER 3 Plus’ 286Wh capacity – plus, it can further expand up to its maximum 840Wh capacity by switching the EB300 with the EB600.
It’s a setup that is ready to cover your personal devices and small appliances anywhere through the seven output ports (3x ACs, 2x USB-As, and a high-speed USB-C port), which deliver up to 600W of steady power supply and can surge up to 1,200W. You’ll have four options for recharging it, starting with the usual AC outlet plug-in, or you can do so from a gas generator, with up to 220W of solar panel input, or while you drive from a 12V vehicle auxiliary port.
Like I said, if you’re looking for another backup power solution, you’ll want to check out EcoFlow’s current Home Preparedness Month Sale with up to 50% power station discounts and a bonus extra 5% savings code – all starting from $299. You can also find sales from other brands over in our dedicated power stations hub here.

EcoFlow sale offers 2,048Wh DELTA 3 Max power station + 500W solar kit at second-lowest $1,377 ($621 off), more from $299

EcoFlow 48-hour flash sale drops 3,600Wh DELTA Pro bundled with 2x 220W solar panels to $2,319, more from 1,379

Anker extends SOLIX power station sale with FREE gear, exclusive savings, refurbished deals, more – starting from $231

Score two of Anker’s latest 2,010Wh SOLIX S2000 power stations down at an exclusive $1,216 ($608 each), more from $650

Anker’s expanded 6,144Wh SOLIX F3000 power station + FREE home integration kit at exclusive $2,090 ($410 off), more

Bluetti 6th Anniversary Sale drops 3,014Wh power station bundle with Alternator & Solar Charger 2 to $1,388 ($211 off), more

Score exclusive launch savings on Bluetti’s new 1,004.8Wh Elite 100 Mini power station and bundles starting from $408

Get Jackery’s 5,040Wh Explorer 5000 Plus power station at the best price of the year ($1,800 under orig. list)
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Petrobras solar JV faces hurdles in advancing projects – BNamericas

Petrobras solar JV faces hurdles in advancing projects  BNamericas
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UQ develops lead-free solar for wearables – manmonthly.com.au

UQ develops lead-free solar for wearables  manmonthly.com.au
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A P11.5-BILLION solar project expansion in Barangay Lais, Malita, Davao Occidental is set to break ground in the third quarter of 2026, as its developer moves to triple the facility’s capacity. Full story: https://www.sunstar.com.ph/davao/p115b-solar-expansion-s – facebook.com

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SunAsia to advance 784-MW Philippine floating PV project with Gunkul – 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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US Finalises Anti-Dumping, Countervailing Duties on Solar Cells from India, Indonesia, Laos – energetica-india.net

US Commerce finalises steep anti-dumping and countervailing duties on crystalline silicon solar cells imported from India, Indonesia and Laos.
September 14, 2026. By EI News Network
The United States has finalised steep anti-dumping and countervailing duty rates on crystalline silicon photovoltaic cells imported from India, Indonesia and Laos, in a move that could significantly raise the cost of these products in the US market.
The US Department of Commerce announced the final affirmative determinations following investigations into whether producers and exporters from the three countries were dumping solar cells in the US market or benefiting from government subsidies.
For Indian exporters and producers, Commerce determined a weighted-average anti-dumping margin of 123.04 percent. The corresponding cash deposit rate, after adjustment for subsidy offsets, is 107.17 percent. The 123.04 percent dumping margin was determined using facts available with adverse inferences.
The companies covered by the Indian anti-dumping determination include Mundra Solar PV Ltd., Mundra Solar Energy Limited, Kowa Company Ltd. and Premier Energies Photovoltaic Pvt. Ltd.. The 123.04 percent margin also applies to all other exporters and producers covered by the determination.
On the countervailing duty side, Commerce determined a 126.09 percent subsidy rate for Mundra Solar Energy Limited and Mundra Solar PV Ltd.. The same rate applies to all other Indian exporters and producers covered by the determination. The subsidy rate was also based on facts available with adverse inferences.
The US market has emerged as an increasingly important destination for Indian solar products. Imports of the investigated solar cells from India jumped from 232.4 million watts in 2022 to 2.05 billion watts in 2023, before reaching 2.30 billion watts in 2024.
In value terms, imports from India increased from USD 83.9 million in 2022 to USD 760.8 million in 2023, and further to USD 792.6 million in 2024, according to US Census Bureau data cited by Commerce.
Indonesia has also been assigned significant duties. Commerce determined a 94.36 percent weighted-average dumping margin for PT Blue Sky Solar Indonesia, PT REC Solar Energy Indonesia and all other exporters and producers. The department said that the rate was based on facts available with adverse inferences.
The final countervailing duty rate for PT Blue Sky Solar Indonesia is 173.70 percent, while PT REC Solar Energy Indonesia and all other exporters and producers face a 73.20 percent subsidy rate.
US imports of the investigated solar cells from Indonesia increased from 499.1 million watts in 2022 to 1.80 billion watts in 2024. Their value rose from USD 177.5 million in 2022 to USD 415.2 million in 2024.
For Laos, Commerce determined a 65.43 perccent weighted-average dumping margin, with a 65.03 percent cash deposit rate after subsidy offsets. The determination covers Solarspace Technology (Laos) Sole Co., Ltd., SolarSpace Technology (Hong Kong) Limited, JA Solar Vietnam Co. Ltd., Trina Solar Energy Development Pte. Ltd. and Trina Solar Science & Technology (Thailand) Company Limited, among others.
The countervailing duty rate for Solarspace Technology (Laos) Sole Co. Ltd. was set at 82.03 percent, while Vietnam Sunergy Joint Stock Company was assigned a substantially higher rate of 153.67 percent. The rate for all other exporters and producers from Laos is 82.03 percent.
Imports from Laos have risen particularly sharply. After recording no imports in 2022, the US imported just 44,629 watts in 2023, before imports surged to 1.91 billion watts in 2024, valued at about USD 335.7 million.
The latest Commerce determinations, however, do not by themselves conclude the entire trade-remedy process. The US International Trade Commission (ITC) is conducting concurrent investigations to determine whether the imports have caused material injury to the US solar industry.
The petitioner in the cases is the Alliance for American Solar Manufacturing and Trade, whose members include Hanwha Q CELLS USA, First Solar and Mission Solar Energy.
The investigations cover crystalline silicon photovoltaic cells, whether or not assembled into modules. The cases involving India are A-533-942 and C-533-943, those involving Indonesia are A-560-846 and C-560-847, and those involving Laos are A-553-003 and C-553-004.
The US Commerce Department said that the import statistics were sourced from the US Census Bureau through S&P Global Trade Atlas and covered the relevant Harmonized Tariff Schedule classifications.
Commerce currently maintains 844 anti-dumping and countervailing duty orders, which it says provide relief to US companies and industries affected by unfair trade practices.

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Homeowner in Germany goes fully off-grid with sodium-ion batteries after rejecting indoor lithium – thecooldown.com

© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.
Another key detail is its cold-weather capability.
Photo Credit: BIWATT
In Augsburg, Germany, one homeowner built a house power system that operates entirely off-grid. 
While that’s impressive enough, the tech behind the project makes it one worth shouting about.
As battery maker Biwatt shared in a piece published in PV Magazine, the most unusual part of the project is the storage choice. 
Because the batteries were to be installed indoors in the basement, the homeowner opted for sodium-ion instead of a large lithium system, prioritizing safety while also weighing cold-weather performance and environmental impact.
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The home’s setup combines a 49-kilowatt-peak solar array with 270 kilowatt-hours of battery storage. Its hardware includes 60 Biwatt R2 sodium-ion battery units and four 12-kilowatt Biwatt H3 hybrid inverters, which together provide 48 kilowatts of inverter power for the house.
The design took shape after the homeowner asked Salzstrom, Biwatt’s local distributor, for an alternative to placing a large lithium-ion battery system inside.
Biwatt said its sodium-ion chemistry offers greater thermal stability and a lower thermal-runaway risk than lithium iron phosphate, helping address the homeowner’s concerns about an indoor battery installation.
Another key detail is its cold-weather capability. Biwatt says the R2 can keep operating at temperatures as low as minus-22 degrees Fahrenheit without auxiliary heating, leaving more of the stored power available for household use instead of warming the batteries.
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“You made a dream come true,” the homeowner was quoted as saying.
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Running a home off-grid means the system has to supply power through every hour of the day, including winter periods and stretches with limited sun. In this case, electricity produced during daylight is stored and used later.
The battery decision was not only about safety. The homeowner was also considering the materials footprint. 
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Lithium extraction may require heavy water use and can disturb land. Biwatt said its sodium-ion batteries rely on widely available sodium and coconut-shell-derived hard carbon, a lower-impact materials path that matched the homeowner’s aim of building an all-green home energy system.
Even for people who never intend to go fully off-grid, safer and more adaptable battery technologies could make home backup power a more realistic option.
As battery choices continue to expand beyond traditional lithium, homeowners may gain more options tailored to safety, climate, and cost. 
Curating competitive bids is a big part of that. With EnergySage’s help, the average person can save up to $10,000 on solar purchases and installations, making it easier to evaluate whether solar and storage make financial sense.
EnergySage’s solar map shows the average cost of a home solar panel system in each state and outlines the incentives available there, helping readers get the best price for rooftop solar panels and access savings they might otherwise miss.
Adding battery storage to a solar setup is one of the best ways to protect your home during outages, save money on energy, and even move closer to going off-grid. If you want to compare your options, EnergySage offers information about home battery storage systems, including competitive installation estimates.
Many companies and engineers are working on solutions for everything from safer indoor batteries to more flexible home backup and a growing list of alternatives to lithium. Newer technologies could make resilient solar storage more realistic for homeowners who aren’t trying to live fully off-grid.
• Palmetto has begun offering backup batteries without upfront costs, lowering a major barrier for homeowners.
• Engineers are advancing water-based batteries for garages, highlighting safer alternatives to indoor lithium packs.
• Engineers testing iron instead of lithium are broadening the menu of safer storage chemistries.
• Researchers have created near-perfect battery technology from abundant materials, underscoring how fast storage chemistry is changing.
• A recycler’s reuse of discarded lithium cells has spotlighted the fire risks surrounding battery waste.
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Jennie deepfake scare at Tokyo festival shows legal threats aren't stopping teen AI abuse – thecooldown.com

© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.
The account believed to have first uploaded the clip was suspended.
Photo Credit: Getty Images
After a clip of Blackpink member Jennie at Tokyo’s Summer Sonic festival racked up over 10 million views, fans sounded the alarm that the footage may have been manipulated. The controversy has tested whether legal threats are enough to curb deepfake-related harm.
As David D. Lee of the South China Morning Post said, the episode was a new flashpoint in South Korea’s battle against artificial intelligence-enabled sexual abuse.
After the clip spread online showing what appeared to be a “wardrobe malfunction,” fans picked through it, arguing it showed signs of AI editing and calling for it to be taken down. The video came from Jennie’s headline performance, during which she turned away from the crowd, adjusted herself, and then continued the set.
The account believed to have first uploaded the clip was suspended, according to Lee, but there has been no announced police or prosecutorial action.
SCMP presented the issue as part of South Korea’s fight over AI-enabled sexual abuse, saying that legal threats have not deterred many teenage offenders.
Deepfakes can be especially explosive, as a clip can spread quickly before facts are clear. Even if a post is removed, copies and screen recordings can continue to circulate.
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The damage also stretches beyond celebrities. AI-generated or AI-altered sexual content can target ordinary people, turning private humiliation into a public and searchable ordeal.
As Lee covered, South Korea updated laws in 2024 following sex crime rings that shared faked images of women and girls, including students, on encrypted Telegram channels. Those new laws featured prison time for up to seven years.
“But the newer deepfake cases were different in one crucial aspect: demonstrating how convincing abuse material can now be conjured from an ordinary photo, then rapidly circulated and viewed by large numbers of people, before anyone – victim or investigator – knew who had made it,” Lee wrote.
And it seems the problem has not exactly gone away on the heels of the new laws, either.
“The Jennie case shows why. Before any prosecution can begin, investigators need to establish whether the footage was indeed fabricated, trace who posted it first and prove whether those who shared it knew it was fake,” Lee wrote.
That’s not always an easy case to make. Lee spoke to An Gab-chul, a lawyer at Gammyung Law Firm in Seoul, who said, “In the case of anonymous accounts, it can take a long time to identify the actual user. Investigators often have to contact operators of overseas servers to determine who is behind an account before the person behind the account shuts it down or destroys evidence.”
Several lawyers and groups, such as Amnesty International Korea, are working to address the problem from both a legal and cultural position, trying to get at the root of the issue.
“This is not something that can be solved simply by strengthening the law, like an endless game of cat and mouse,” Bang Suk-ho, head of the AI industry center at Seoul law firm Lin LLC, told Lee.
In a statement, OA Entertainment said Aug. 18 it had “recently identified ongoing misconduct targeting the artist [Jennie] across online communities and social media platforms,” SCMP reported. The company said it was working with lawyers on civil and criminal action and promised “no compromise or leniency whatsoever.”
This is one example of how AI-related harm can spiral. AI content can also highlight concerns over the technology’s social and infrastructure costs.
• At the Chicago Sun-Times, an AI-generated summer reading list embarrassed editors.
• At a global summit, leaders warned AI may become an engine of inequality.
• Across the tech sector, backlash is growing as AI strains jobs, water, and power.
• Lawmakers are being pushed to require revelations about data centers as AI’s footprint grows.
• Utilities are signing unprecedented deals with the industry as AI data centers drive up demand.
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EcoFlow 48-hour flash sale drops 3,600Wh DELTA Pro bundled with 2x 220W solar panels to $2,319, more from 1,379 – 9to5Toys

As part of EcoFlow’s ongoing Home Preparedness Month Sale, the brand has launched a 48-hour flash sale on four units with up to $2,200 savings. One solid tried-and-true option is the 3,600Wh DELTA Pro Portable Power Station coming with 2x 220W solar panels for $2,319 shipped, which will hit that price once it is in your cart. This bundle may carry a $3,289 MSRP these days since the brand permanently cut the price from its original $5,199 MSRP, but you can more often buy the station and two solar panels separately down at $2,497 from Amazon, which is beaten out with the flash deal here currently. While we have seen the price go lower in the past, especially during Prime Day, you’re still getting a solid $178 off the going rate here ($970 off the MSRP) for one of the most beloved models from EcoFlow with solar generation capabilities for charging anywhere. Head below to check out the full flash lineup or browse the full sale lineup with bonus extra savings here.
The EcoFlow DELTA Pro power station has remained a fan favorite legacy model for quite some time, bringing along a larger 3,600Wh LiFePO4 capacity here that you can expand up to 25kWh. It also boasts a nice array of 14 output ports (5x ACs, 4x USB-As, 2x USB-Cs, 2x DCs, 1x Anderson, and 1x car port) and delivers up to 3,600W of steady power to devices/appliances, while also surging as high as 7,200W when needed.
The bundle here starts you off with 440W of solar panel input towards the 1,600W maximum, granting you the charge-anywhere-solar capabilities. From there, you can also recharge the station from a standard AC outlet, from an EV charging station using the appropriate adapter, as well as having options to charge from a gas generator or a 12V/24V car auxiliary port.
As I mentioned, this 48-hour flash lineup is part of EcoFlow’s ongoing Home Preparedness Month Sale with up to 50% discounts and bonus extra 5% savings on orders – all starting from $299. You’ll also find more individual deals and overall sales from this and other brands in our dedicated power stations hub here.

EcoFlow sale offers 2,048Wh DELTA 3 Max power station + 500W solar kit at second-lowest $1,377 ($621 off), more from $299

Anker extends SOLIX power station sale with FREE gear, exclusive savings, refurbished deals, more – starting from $231

Score two of Anker’s latest 2,010Wh SOLIX S2000 power stations down at an exclusive $1,216 ($608 each), more from $650

Anker’s expanded 6,144Wh SOLIX F3000 power station + FREE home integration kit at exclusive $2,090 ($410 off), more

Bluetti 6th Anniversary Sale drops 3,014Wh power station bundle with Alternator & Solar Charger 2 to $1,388 ($211 off), more

Score exclusive launch savings on Bluetti’s new 1,004.8Wh Elite 100 Mini power station and bundles starting from $408

Get Jackery’s 5,040Wh Explorer 5000 Plus power station at the best price of the year ($1,800 under orig. list)
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CrossBoundary Energy powers up 233MW solar-plus-storage site at DRC copper mine – PV Tech

African renewables financier CrossBoundary Energy has begun commercial operations at a 233MW/526MWh solar-plus-storage project in the Democratic Republic of the Congo (DRC).
The Kamoa solar project is located next to the Kamoa-Kakula Copper mine, the largest copper mine in Africa and one of the largest on earth. The mine is jointly owned by Canadian mining firm Ivanhoe Mines and Chinese state-run mining firm Zijin Mining, along with the DRC government.

The solar project is backed by a power purchase agreement (PPA) with the Kamoa Copper mine, under which CrossBoundary said it would supply “round-the-clock” power to the mine’s operations, to “enable continued expansion” at the site.
“By leveraging declining costs of solar and battery technologies, the project demonstrates that renewable baseload power can now compete with and outperform traditional fossil fuel generation in heavy industry,” CrossBoundary Energy said in an announcement.
The project deploys around 360,000 back contact (BC) modules from Chinese solar panel manufacturer Aiko. The company’s 655W dual-glass ABC modules have a reported efficiency of 24.2%, with “superior temperature coefficient and hotspot suppression” that improve their safety and performance under hot conditions like the DRC.
CrossBoundary said that the project was built within 16 months of first signing the PPA deal with the mine, making it “the fastest built large-scale solar/BESS project in Africa”.
Solar deployments in the DRC have grown significantly in recent years and are expected to increase by over 500% in 2026, according to data from energy think tank Ember. The country has historically had very low rates of electricity adoption and access, though the expansion of mining operations to exploit the country’s rich supplies of critical minerals has increased investment in new energy capacity, like the Kamoa solar project.
Ember also said that the price shocks to oil and diesel resulting from the ongoing Middle East conflict have pushed people who had been using generators towards installing solar. The think tank said that solar module imports from China to Africa grew by 53% year-on-year in the 12 months to June 2026, and 19 countries, including the DRC, Zimbabwe and Egypt, are on track to see solar installations grow by more than 100% this year.
Alongside solar growth, the DRC has imported more batteries than solar modules by dollar value over the last two years, according to Ember. It said that battery imports “far exceeded solar imports” in the country, largely to power solar-plus-storage projects at copper mines.

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AMEA Power brings 24MWp solar power plant in Uganda into operation – Zawya

Dubai, United Arab Emirates – AMEA Power, one of the fastest growing renewable energy companies in the region, announced today, that its 24 MWp Ituka Solar PV Project in Uganda has reached Commercial Operations Date (COD), marking a major milestone for the company and Uganda’s renewable energy sector.
The project, located in Uleppi, Madi Okollo District in Uganda’s West Nile region, is the first solar independent power producer (IPP) project in the region and the largest installed capacity IPP in West Nile. 
The milestone follows the successful energization of the Project’s 25 MVA 132/33 kV substation in July 2026, which enabled the completion of reliability and performance tests and the commencement of power delivery to the national grid through the Uganda Electricity Transmission Company Limited (UETCL), the offtaker. 
The solar PV project is being implemented by Ituka West Nile Uganda Limited, a project company registered in Uganda and fully owned by AMEA Power. 
The 24 MWp solar power plant is expected to generate approximately 53,940 MWh of clean energy annually, helping to strengthen grid reliability while supporting the growing electricity needs and industrialisation ambitions of Uganda’s West Nile region. Furthermore, power more than 192,640 households, and will offset 26,600 tonnes of carbon emission annually. 
Hussain Al Nowais, Chairman of AMEA Power, said: ” The successful commercial operation of the 24MWp solar PV plant is an important milestone for AMEA Power and for Uganda’s energy sector. As the first solar IPP in the West Nile region, this project demonstrates the important role that renewable energy can play in supporting economic development and strengthening energy infrastructure. We are proud to contribute to Uganda’s clean energy ambitions and to support the continued development of the West Nile region.” 
The USD 27 million project was financed by debt and equity mix from AMEA Power and the Emerging Africa Infrastructure Fund (EAIF). 
The commissioning of the solar power plant marks AMEA Power’s first operational asset in Uganda and further strengthens the company’s growing renewable energy portfolio across East Africa. AMEA Power remains committed to supporting the country’s energy transition and socio-economic development through long-term investments in sustainable infrastructure.
About AMEA Power
Headquartered in Dubai, AMEA Power is a developer, investor, owner and operator of renewable energy projects. As one of the fastest-growing renewable energy companies in the region, AMEA Power has assembled a world-class team of industry experts to deliver projects across Africa, the Middle East, and emerging Asia. With projects in 20 countries, a 6GW+ project pipeline, and 2,600MW+ in operation and under construction, the company is rapidly expanding its investments in wind, solar and energy storage, demonstrating its long-term commitment to the global energy transition. 
Contacts:
E-mail: Barbro.Ciakudia@ameapower.com
For more information, please visit: http://www.ameapower.com

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Ohio regulators give rare OK to 149-MW solar and battery project on former coal mine land – thecooldown.com

© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.
“Developing a solar project on reclaimed land is an excellent opportunity.”
Photo Credit: Timothy Peshek / U.S. Department of Energy
In Ohio, large-scale solar projects often face strong opposition. However, solar advocates have achieved a relatively easy victory in the state, largely due to the location of their proposed project. 
The Ohio Power Siting Board unanimously approved the Hamden Energy project in Vinton County, a major clean energy development in southeastern Ohio. The project would feature 149 megawatts of solar generation and 149 megawatts of battery storage on reclaimed coal mine land, Canary Media reported.  
While the massive scale alone makes the project noteworthy, the lack of pushback from the Ohio Power Siting Board also was unique.
The main reason for the lack of strong opposition is the project’s location on a brownfield site. As Canary Media reported, developer Recurrent Energy proposed building on reclaimed mine land instead of active farmland.
This decision allowed Recurrent to avoid a common point of conflict in Ohio solar fights, with critics frequently arguing that utility-scale clean-energy projects remove agricultural land from production.
Vinton County is part of Appalachian Ohio, where the mining of coal, iron, and clay once played a major role in the local economy. As those industries have declined sharply over the past century, they have brought the regional economy down with them. About 19% of the county’s residents presently live in poverty, according to Canary Media.
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Proponents of large-scale solar and wind projects have often come up against a 2021 state law that gives officials the authority to block such projects. Notably, that law does not apply to energy production that relies on nonrenewable, extracted fuels like coal and gas. 
According to Canary Media, public feedback on the proposed solar project has been mixed. The most frequent concern was whether reclamation at the site would be finished before construction begins.
Renewable-energy developers often find it easier to obtain approvals on projects located at former mine lands and other industrial brownfields.
However, that does not mean that such locations are ideal. Canary Media reported that RMI, a clean energy think tank, said projects on reclaimed land can cost more than those on undeveloped “greenfield” sites because of remediation needs and other site conditions.
For its part, Recurrent Energy said that construction on the solar-and-battery array will start only after reclamation is complete.
Andy Chow, a spokesperson for the Ohio Department of Natural Resources, told Canary Media that Cheyenne Resources — which holds the surface mining permit for the property — is responsible for the remediation work.
“Developing a solar project on reclaimed land is an excellent opportunity to harvest another one of the area’s abundant resources to power Ohio while providing supplemental tax revenue to support a legacy energy community,” said senior development manager for Recurrent Energy Ali Trunzo, per Canary Media.
Similar projects elsewhere show why reused industrial land can make clean energy easier to site, whether the property is a capped landfill, a former coal mine, or part of a community long tied to coal.
• In Mansfield, Ohio, officials approved solar farms on old landfills to create new local power supplies.
• In Illinois, a former coal mine now hosts 16,000 solar panels, enough to supply electricity to 7,000 homes.
• In Minnesota, Xcel’s Sherco site is becoming a major solar-and-battery hub as coal retires.
• In Scotland, planners are turning an old coal mine into long-duration energy storage for millions of homes.
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© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.

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Applied Machinery offers resource recovery for solar panels – Waste Management Review

Applied Machinery offers resource recovery for solar panels  Waste Management Review
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UQ develops lead-free solar for wearables – Manufacturers' Monthly

UQ develops lead-free solar for wearables  Manufacturers’ Monthly
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‘Huge Step Forward’: Illinois Inches Closer on Battery Storage, Solar Goals – news.wttw.com

CHICAGO — For Illinois to meet its ambitious decarbonization goals, the state’s energy grid will need more battery storage to make use of solar and wind power when the sun doesn’t shine and wind doesn’t blow.
State regulators took the first major step last month toward bringing new energy storage online, a key component of legislation that took effect in June.
The results of the first battery power procurement auction mean another 600 megawatts of new utility-scale energy storage projects will come online in Illinois by 2030 — roughly enough to power half a million homes, or the equivalent of what a single coal or natural gas plant generates.
That’s over four times the 141 megawatts of utility-scale battery storage currently installed in the state, according to the Solar Energy Industries Association.
But it’s just over half of what regulators sought to procure coming into the process.
Despite that, renewable energy advocates are celebrating the progress, with more procurements to follow as the state looks to secure a minimum of 3,000 megawatts by the end of 2030.
“The technology is already here and being developed as we speak,” said Brett Sproul, Illinois policy advocacy lead at Advanced Energy United, a national industry association representing renewable energy and storage providers.
“Despite not hitting the initial procurement target, the 600 megawatts of storage, regardless, in and of itself, is a huge step forward for Illinois, and definitely a really great success for affordability and reliability in the state,” he added.
The summer procurement event was the first to come after Gov. JB Pritzker signed the Clean and Reliable Grid Affordability Act, or CRGA, into law earlier this year. It was conducted by the Illinois Power Agency, an independent agency created by lawmakers to manage energy procurement plans for the state.
The event targeted 1,038 MW of energy storage projects — 450 MW for the Midcontinent Independent System Operator, or MISO, territory in central and southern Illinois, and 588 MW for PJM Interconnection in the northern Illinois ComEd territory.
The results exceeded the goal for MISO, securing 520 MW total from four projects. PJM came in below target, with 80 MW secured through one project.
Despite the PJM shortfall, experts familiar with the results say they should not be read as a failure — or as indicating major inherent differences between the two territories.
Industry experts said they believed the IPA wanted to get the new procurement process right before eventually broadening the scope. The agency was required to conduct the initial procurement within rigid rules as dictated by statute, but it will have more flexibility under future procurements in 2027 and 2028 and will seek stakeholder feedback this fall to improve the process.
James Gignac, Midwest policy director at the Union of Concerned Scientists, said the strict parameters in the initial round created challenges for developers in the PJM territory.
PJM has long struggled to connect new power generation to its grid, resulting in long delays for new energy projects to come online. Those projects can only stay in the queue for so long before requests time out, and the timing of the procurement event coincided with several major projects in the PJM queue expiring, according to industry insiders.
“My sense is that we just had a mismatch between the commercial operation date this procurement was seeking, and the status of project development in the PJM queue,” Gignac said.
Those developers can reapply in future cycles, at which time the financial incentives contained within CRGA will be in full effect.
Andrew Linhares, director of Midwest state affairs for the Solar Energy Industries Association, or SEIA, said the second procurement will be more revealing.
“Those will be the projects that are reacting to the passage of this landmark law, and that’ll really tell us the breadth and the number of interested developers and the appetite for these projects,” Linhares said.
Linhares said another factor will also likely lead to greater interest: The first procurement accepted only standalone storage projects; the next will allow projects that pair storage with solar or wind projects.
“I think that the paired solar and storage market is really aggressive and optimistic for the future for Illinois,” he said.
A recent report from SEIA and data analytics firm Wood Mackenzie identified combined solar and storage as the fastest emerging source of energy in the U.S., accounting for 70% of all new capacity added to the grid in the first half of 2026.
That power, the report estimates, is enough to operate over 50 million homes, more than one-third of all U.S. households.
An integrated resource planning process, also established under CRGA, is set to kick off with an initial plan submitted by the IPA and other regulatory agencies this November.
That will give regulators the opportunity to assess the progress of energy storage programs and determine if additional procurements will be needed.
Residential solar projects are also on the rise in the state, with new consumer-facing projects designed to lower energy bills and add capacity to the grid.
For example, rooftop solar and battery company SOLRITE Energy entered the Illinois market last month, made possible by the state’s “virtual power plant” program that was included in CRGA.
That program allows homes and businesses with solar panels or wind turbines to pool energy, acting “virtually” like a power plant despite not physically existing as one.
The company installs its solar panels and home batteries for ComEd and Ameren customers at no up-front cost. Households pay monthly bills at a fixed rate and the energy from SOLRITE’s network can be dispatched back to the grid during periods of high demand.
SOLRITE’s goal is to install 500-1,000 paired solar-storage systems in Illinois by the end of the year and a minimum of 5,000 in 2027, according to its CEO Regan George.
Renewable energy advocates say these types of residential programs, along with the IPA’s utility-scale procurements, are exactly what was envisioned when lawmakers passed CRGA.
“It’s exciting to see real life projects and programs being implemented as a result of the legislature’s leadership,” Union of Concerned Scientists director Gignac said. “Implementation is not an easy process, but there’s a lot of good people working on it.”
Capitol News Illinois is a nonprofit, nonpartisan news service that distributes state government coverage to hundreds of news outlets statewide. It is funded primarily by the Illinois Press Foundation and the Robert R. McCormick Foundation.
This article first appeared on Capitol News Illinois and is republished here under a Creative Commons Attribution-NoDerivatives 4.0 International License.
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NuEnergy to invest RM49m in 21MWp solar facilities across 49 government rooftops – themalaysianreserve.com

NuEnergy to invest RM49m in 21MWp solar facilities across 49 government rooftops  themalaysianreserve.com
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A fantasy flight of fancy | Factor This Brief – Factor This

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The folks running the U.S. Department of Energy’s social media found a way to reiterate the current administration’s distaste for renewables while reminding us they know it’s football season, too.
Last week, the DOE posted a mock fantasy roster for the “American Energy Dominance” team, with each slot filled by a generation technology. Natural gas at quarterback, oil at running back, nuclear at wide receiver, etc.
Solar and wind are listed as “questionable,” a common injury designation in the National Football League, for those blissfully unaware. The implication, of course, is that neither can be relied upon when needed.
While going viral for misguided clean energy takes is nothing new for Energy Secretary Chris Wright, this gag at the expense of the U.S. solar industry is particularly tone deaf considering the roadblocks and pitfalls laid out by the Trump Administration, like back-and-forth tariffs, ambiguous foreign ownership clauses, disappearing tax credits, various crackdowns on foreign polysilicon, and slow-walking permitting.
But like a little daisy wriggling up through a crack in the concrete, solar in particular persists- and the DOE ought to get used to seeing it in the lineup.
In fact, the United States now has enough operating solar capacity to power more than one-third of all American homes. Solar and energy storage (the panacea to the pervasive: What do you do when the sun isn’t shining?) account for 70% of all new capacity added to the grid in the first half of 2026, according to new data from the Solar Energy Industries Association (SEIA) and Wood Mackenzie. The solar industry added 11.4 gigawatts (GW) of new electricity-generating capacity in the second quarter of 2026, a 45% year-over-year increase and a 43% increase from Q1.
“Solar and storage have grown to a scale most Americans have yet to fully realize, and we simply can’t meet America’s growing energy needs without these technologies,” assessed SEIA CEO and former Minnesota Governor Tim Pawlenty.
SEIA predicts the U.S. solar market will nearly double over the next five years. Right now, business is booming coast to coast, particularly in states won by President Trump in 2024, which accounted for 71% of all solar capacity installed in the first half of 2026 and eight of the top 10 states for new solar installations.
That’s a lot of production from your FLEX spot! Hope it’s a keeper league.
Hello and welcome to the Factor This Brief, a weekly collection of energy industry finance and development updates, delivered straight to your inbox on Monday mornings and hosted in a not-so-brief fashion here on Factor This, featuring the people, projects, and technology driving our electric future.
Thanks for checking it out. If you like what you see here or want to recommend a story for next week, drop me a line. As always, here’s a tune for the long and winding road. I hope your next Pop-Tart has icing all the way to the edges.
Utility-scale battery energy storage systems (BESS) typically take nine months or longer to build, but some developers are significantly truncating traditional timelines as speed-to-power looms critical. Case in point: the 160-megawatt (MW) SMT Houston IV BESS in Houston, Texas, which took just six weeks to commission and energize.
Developer, owner, and operator SMT Energy worked with electric infrastructure contractor Irby Construction and battery provider and optimizer FlexGen Power Systems to commission the project three times faster than originally planned.
This summer, Texas has repeatedly broken its electricity demand records and is staring down the barrel of staggering growth projections that threaten to triple (or more) load on the ERCOT system, underscoring the importance of battery storage. Houston IV joins more than a dozen projects built and commissioned by SMT and FlexGen that support the ERCOT grid, totaling more than 300 MW of battery storage capacity.
“Bringing a 160-MW battery storage facility online in just six weeks required disciplined planning, seamless coordination, and an unwavering focus on safety and quality,” reckoned Shaun Coleman, project manager at Irby Construction, SMT and FlexGen’s engineering, procurement, and construction (EPC) partner.
“Projects like Houston IV don’t get built from behind a desk. They get built in the field by men and women showing up every day, working long hours, solving problems, and getting the job done,” added Henry Hernandez, director of construction at SMT Energy. “Houston IV turned on faster than any other battery storage plant in our history because there was quality at every stage, from procurement to commissioning.”
SMT Energy cited FlexGen’s One-Touch Commissioning deployment method as critical to providing battery reliability to its customers. FlexGen says it consistently delivers installations faster than the industry average because its systems are pre-configured in a lab, remotely assisted in real time by a remote operations center (ROC), and executed by a dedicated field commissioning team.
“What used to take 25-plus weeks took us six,” said Jason Rislov, SVP of operations at FlexGen. “That time saved translates directly into giving the grid and consumers what they need most right now: a more reliable, resilient energy system.”
Suniva, the largest and oldest American manufacturer of high-efficiency monocrystalline silicon solar cells, has attracted $835 million from investors to build a second U.S. solar cell manufacturing facility that will more than quadruple its domestic capacity.
Suniva, which boasts a fully operational facility in Norcross, Georgia, delivering 1 GW of cells annually, is building a new 4.5 GW plant in Laurens County, South Carolina, with completion expected in late 2027 and full ramp expected in 2028. The shell of the 621,468-square-foot building is already complete. The fully funded project represents an approximately $600 million investment and will spur 564 new advanced manufacturing jobs in South Carolina’s Upstate region.
Suniva says its expansion is de-risked by a domestic supply chain already in place and long-term product offtake agreements with leading U.S. solar players for most of its planned future production. The company expects the new Laurens County capacity to be “highly competitive” as it comes online.
“Suniva is scaling from a position of strength,” assessed Connor Arras, managing director of climate credit at Goldman Sachs Alternatives. “They’re already producing at commercial scale, have locked in critical domestic supply relationships, and have long-term customer commitments covering their planned output. Combined with a fully funded expansion, that gives us confidence in Suniva’s ability to become an even more important supplier to America’s solar industry as the country works toward domestic supply chain independence.”
“U.S. energy independence and meeting the needs of increasing energy usage in the United States requires domestic production of U.S. solar cells. As the only U.S.-owned solar cell manufacturer at commercial scale, we believe Suniva is uniquely well positioned in the market. We look forward to helping the United States and the Administration achieve its important goal of U.S. energy independence,” added Tony Etnyre, CEO of Suniva.
The capital raise includes both debt and equity financing from a group of top-tier financial partners, including Suniva’s largest shareholder and long-term backer, Lion Point Capital. It consists of senior secured credit facilities provided by funds managed by Goldman Sachs Alternatives and I Squared Capital, a second lien credit facility provided by JBA Asset Management, and equity investments by Electron Capital Partners, Orion Infrastructure Capital (OIC), and Rubric Capital Management, along with certain other investors. Roth Capital Partners served as lead private placement agent to Suniva. Gibson, Dunn & Crutcher LLP served as legal counsel to Roth. Rodman & Renshaw served as a financial advisor to Suniva. J.P. Morgan acted as the sole structuring agent to Suniva. Kilpatrick Townsend & Stockton LLP served as legal counsel to Suniva.
Suniva announced in June that it signed a definitive reverse merger agreement and will merge with a wholly-owned subsidiary of SUNation Energy (Nasdaq: SUNE), a leading provider of residential and commercial solar energy systems, battery storage solutions, and comprehensive energy services. The combined company is expected to operate under the Suniva name and continue SUNation’s listing on the Nasdaq Capital Market.
San Antonio-based developer OCI Energy and Israeli independent power producer (IPP) Arava Power kicked off September by breaking ground on the 347 MWdc SunRoper Solar project, marking the start of construction in Wharton County, Texas, near the Houston metropolitan area.
Expected to begin operations in December 2027, the project is being jointly developed by OCI Energy and Arava Power. It was financed by ING and will be built by EPC contractor WHC. SunRoper is lined up to provide electricity to an as-yet-unspecified Fortune 100 company under a long-term power purchase agreement (PPA).
“SunRoper demonstrates how strategic partnerships can help meet Texas’ growing demand for electricity through investments in critical energy infrastructure,” observed Sabah Bayatli, president of OCI Energy.
“SunRoper represents another important step in Arava Power’s evolution from a pioneer of Israel’s solar market into a growing international renewable energy platform. Our collaboration with OCI Energy has been instrumental in advancing this project and reflects the kind of strong local partnership that supports our long-term growth in the U.S. market,” chimed Ilan Zidkony, CEO of Arava Power. “SunRoper reflects our focus on building high-quality, long-term renewable energy assets through disciplined execution, while further strengthening Arava Power’s presence in the United States.”
Learn more about OCI Energy on the Factor This podcast: Solar, storage, and staying ahead: OCI Energy’s growth story
Nuclear startup Bluecore Energy is making a big splash, announcing an oversubscribed $50 million seed round last week to support development of its small modular, water-cooled nuclear power reactors (SMRs) designed to operate aboard floating barges. The company, founded earlier this year, emerged from stealth in July with $10M in pre-seed funding in its coffers.
Bluecore’s first application will be electricity generation, followed by a longer-term ambition of building nuclear energy systems for the maritime economy. The aim is to deliver reliable, zero-emission power directly to ports, critical infrastructure, and eventually cargo ship propulsion. Rather than waiting years for new electric infrastructure, Bluecore’s systems promise on-site power in days.
“Our mission is simple: democratize access to clean energy,” explained founder and CEO Kofi Asante. “Billions of people live near water, yet access to reliable power is still too often constrained by geography and existing infrastructure. We want to build a future where clean energy can go where it is needed.”
Bluecore Energy’s first barge and electric test reactor at its headquarters at the Port of Long Beach (left) and founder Kofi Asante (right). Courtesy: Bluecore Energy
Bluecore Energy has already delivered its first barge and electric test reactor to its headquarters at the Port of Long Beach, California, becoming the first small modular reactor company to establish an HQ inside a major U.S. port. The Port of Long Beach is one of the busiest container ports in the United States, handling more than 9 million container units and approximately $300 billion in cargo annually.
The initial 10 MWe system is being developed to power the equivalent of approximately 15,000 homes or scale to meet the power needs of a major port. Designed to be fueled just once and then operate for years, the reactors (which can be scaled) can provide a new power source for ports, utilities, data centers, offshore infrastructure, and communities facing energy constraints.
“My team and I took nuclear reactor te
chnology that’s been running power plants safely for seventy years, made it smaller, and put it on a barge. A power plant that floats,” summarized Asante.
According to TechCrunch, Bluecore wasn’t planning to raise money this year, but calls kept coming after its pre-seed launch. Many of the startup’s original investors, including Slauson & Co., Harlem Capital, and Ripple co-founder Chris Larsen, doubled down on the new $50M round, with new capital coming from the likes of Collab Capital, Kevin Hart’s HartBeat Ventures, plus angel investments from Tesla, Uber, Amazon, and Google. Silverton Partners led the new seed round, which took eight weeks to close.
Green data center developer Soluna Holdings is celebrating major milestones down in Texas, energizing the last leg of a wind-powered project and learning its expansion will be considered base load by the local grid operator.
Soluna has energized the final 14 MW at Project Kati 1, completing the 83 MW site, and has been notified that ERCOT has conditionally classified the full 166 MW Kati campus, including the planned Kati 2 expansion, as Base Load in its Batch Zero interconnection process.
Batch Zero is ERCOT’s transitional process for evaluating large load interconnection requests system-wide, replacing the prior project-by-project approach. A Base Load classification means a project’s interconnection capacity is preserved on the basis of prior study work, and that the project is not subject to further reliability evaluation or megawatt allocation within the Batch Zero study. According to ERCOT, more than 438,000 MW of large load interconnection requests had entered the queue as of mid-2026, with nearly 90% coming from data centers.
“This is proof that the Soluna model works,” observed John Belizaire, CEO of Soluna. “We build where the power already is, and we bring generation with us, and ERCOT’s framework recognizes exactly that. Kati 1 is finished and energized today, and our full 166 megawatts is positioned as Base Load while much of the market is still waiting to learn what it will be allocated.”
Project Kati is a 166 MW wind-powered campus in Willacy County, Texas, powered by the Las Majadas wind energy project and built in two phases. Kati 1, the 83 MW first phase, is dedicated to Bitcoin hosting. Kati 2 will add 83 MW for AI and high-performance computing. Built behind the meter, the campus converts stranded renewable energy into productive computing capacity while bypassing the transmission upgrades and interconnection queues that constrain grid-connected development.
The classification is conditional pending completion of ERCOT’s ongoing verification process, under which ERCOT may remove a project from Batch Zero if the applicant does not respond to its information requests. Soluna is participating in the verification process and expects the full 166 MW to be confirmed as Base Load.
Soluna’s total operating capacity is up to approximately 206 MW, and the company claims it is advancing a development pipeline of approximately 6.3 GW, including more than 650 MW of AI and high-performance computing capacity in development at Kati 2 and Project Dorothy 3.

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First Tellurium's PyroDelta Developing Thermoelectric Film to Extend Solar Panel Power Generation – investingnews.com

(TheNewswire)
Tellurium-based technology designed to generate additional electricity from temperature differentials during periods of low or no sunlight.
Vancouver, BC, Canada, September 14, 2026 – TheNewswire Vancouver, BC First Tellurium Corp. (CSE: FTEL, OTC: FSTTF) ("First Tellurium" or the "Company") reports that that its subsidiary PyroDelta Energy is developing a tellurium-based thermoelectric film designed to extend electricity generation from solar panel installations beyond daylight hours and during periods of reduced sunlight.
The film would be applied to the back of conventional photovoltaic (PV) panels without requiring alterations to the panel's basic design or supporting infrastructure. PyroDelta is developing the technology to generate electricity from temperature differentials between the panel surface and its surrounding thermal environment, including heat retained and radiated from the ground.

PyroDelta Head Engineer Michael Abdelmaseh discussed the technology in a recent .
"We estimate our thermoelectric film is about 11% to 12% efficient," said Abdelmaseh. "Conventional solar panels today typically operate at efficiencies of about 20% to 22%. Our objective is not to replace photovoltaic generation, but to complement it by capturing energy from temperature differentials when solar irradiance is low or unavailable."
First Tellurium President and CEO Tyrone Docherty noted that development of the solar technology has not detracted from PyroDelta's current priority of bringing its heavy-lift drone technology to market.
"Michael has been developing the solar concept for some time," said Docherty. "Our immediate focus remains the drone technology, which we believe represents the most direct path to commercialization and an important opportunity to demonstrate the broader potential of our thermoelectric technology. As we establish markets for the drones, we intend to advance other applications, including solar."
The potential market for technologies capable of increasing the productivity of solar installations is substantial. According to the International Energy Agency Photovoltaic Power Systems Programme (IEA PVPS), global installed photovoltaic capacity of all types, including cadmium-telluride, approached three terawatts (TW) at the end of 2025, with approximately 698 gigawatts (GW) of new capacity installed during the year. Solar PV now supplies more than 10% of global electricity demand.
While PyroDelta's thermoelectric solar film remains at an early stage of development, the Company believes the technology could complement conventional photovoltaic generation by producing additional electricity when solar irradiance is reduced or unavailable, provided a sufficient temperature differential exists. Because the film is being designed for application to the back of conventional solar panels without changing their basic design, PyroDelta sees potential applications in both new solar installations and, subject to further development and testing, the existing global installed base.
About First Tellurium Corp.
First Tellurium's unique business model is to generate revenue and value through the development of tellurium-based technologies as well as mineral discovery, project development, and project generation.
First Tellurium is listed on the Canadian Securities Exchange under the symbol "FTEL" and on the OTC under the symbol "FSTTF". Further information about FTEL and its projects can be found at www.firsttellurium.com.
On behalf of the board of directors of
First Tellurium Corp.
"Tyrone Docherty"                       
Tyrone Docherty
President and CEO
For further information please contact:
Tyrone Docherty
604.789.5653
tyrone@firsttellurium.com
X/Twitter:

Neither the Canadian Securities Exchange nor its regulations services accept responsibility for the adequacy or accuracy of this release.
Forward-looking information
All statements included in this press release that address activities, events or developments that the Company expects, believes or anticipates will or may occur in the future are forward-looking statements.  These forward-looking statements involve numerous assumptions made by the Company based on its experience, perception of historical trends, current conditions, expected future developments and other factors it believes are appropriate in the circumstances. In addition, these statements involve substantial known and unknown risks and uncertainties that contribute to the possibility that the predictions, forecasts, projections and other forward-looking statements will prove inaccurate, certain of which are beyond the Company's control.  Readers should not place undue reliance on forward-looking statements.  Except as required by law, the Company does not intend to revise or update these forward-looking statements after the date hereof or revise them to reflect the occurrence of future unanticipated event.
Copyright (c) 2026 TheNewswire – All rights reserved.

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CrossBoundary Energy Starts 233MW Solar-Plus-Storage at DRC Copper Mine – IndexBox

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CrossBoundary Energy, a financier of renewable projects in Africa, has launched commercial operations at a solar-plus-storage facility with 233MW of solar and 526MWh of storage capacity in the Democratic Republic of the Congo.
The Kamoa solar project is situated adjacent to the Kamoa-Kakula Copper mine, which is the biggest copper mine in Africa and ranks among the largest worldwide. The mine is co-owned by Canadian mining company Ivanhoe Mines, Chinese state-run miner Zijin Mining, and the DRC government.
A power purchase agreement with the Kamoa Copper mine underpins the solar project. Through this deal, CrossBoundary said it would deliver round-the-clock electricity to the mine’s operations, allowing continued expansion at the site.
According to CrossBoundary Energy, the project illustrates that renewable baseload power is now able to compete with and surpass conventional fossil fuel generation in heavy industry, aided by falling costs of solar and battery technologies. Approximately 360,000 back contact modules from Chinese solar panel maker Aiko are deployed at the project. Aiko’s 655W dual-glass ABC modules carry a reported efficiency of 24.2%, featuring superior temperature coefficient and hotspot suppression that enhance safety and performance in hot climates such as the DRC’s.
CrossBoundary said construction was completed within 16 months of first signing the PPA with the mine, calling it the fastest built large-scale solar and battery energy storage project in Africa.
Data from energy think tank Ember shows that solar deployments in the DRC have expanded considerably in recent years and are projected to increase by over 500% in 2026. The nation has historically recorded very low rates of electricity adoption and access, but the growth of mining operations to extract its abundant critical minerals has driven greater investment in new energy capacity, such as the Kamoa solar project.
Ember further noted that oil and diesel price shocks stemming from the ongoing Middle East conflict have driven people who previously relied on generators to adopt solar. The think tank reported that solar module imports from China to Africa rose by 53% year-on-year in the 12 months ending June 2026, with 19 countries, among them the DRC, Zimbabwe and Egypt, on course to see solar installations expand by more than 100% this year.
In addition to solar growth, the DRC has imported more batteries than solar modules by dollar value over the past two years, per Ember. The think tank said battery imports far exceeded solar imports in the country, mainly to supply solar-plus-storage projects at copper mines.
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A new solar cell could generate electricity underwater – arstechnica.com

The trick isn’t using perovskites—the trick is making them last.
In one episode of the Hanna-Barbera cartoon Birdman, the eponymous hero struggles to fight the evil Dr. Shark aboard a submarine without solar energy to recharge his powers. So Birdman would surely appreciate the new perovskite solar cells developed by a team led by Simin Ma at Yunnan University, since they are designed to work underwater.
Solar cells made from perovskites rather than silicon are always a tale of trade-offs. They can be made cheaply, they can take interesting forms (like thin, flexible, transparent films), and they can convert substantially more of the incoming solar energy into electricity. The difficulty is that they tend to degrade quite quickly.
Moisture is particularly destructive to perovskites, making them a seemingly odd choice for an underwater solar panel. But these materials have another critical superpower: They can be tuned to work with different wavelengths of light. Water quickly blocks the wavelengths of light that silicon solar panels absorb, but a carefully designed perovskite cell could still make electricity in the deep blue sea. And actually, the lower light levels and cooler temperatures should help it live longer.
Tuning perovskites just requires tweaking some of their chemistry during production, so getting something that absorbs the wavelengths present a few meters deep was not a challenge. The real task was making the cells durable. The team found a particularly effective additive (polyhexamethylene guanidine hydrochloride) that helped in several ways.
It built a water-repelling layer around the material, for one. But part of the compound also gets involved with the perovskite crystal lattice, helping larger crystals form and preventing ions from moving around in the lattice structure. The additive limits some of the common ways that perovskites break down, while also improving the solar cell’s electricity production.
When the researchers tested the cells under light filtered to match an ocean depth of about 10 meters, they were remarkably efficient, converting about 35 percent of that light energy to electricity. (Silicon solar panels are generally closer to 20 percent efficiency.)
After building a proper little solar panel by sandwiching the perovskite in some protective layers, the team ran real-world durability tests. First, they submerged it in seawater (using their filtered light) for about 40 days, at which point it was still at 99.6 percent of its original efficiency. Based on that, they estimate it should last 5.5 years in seawater before it drops to 80 percent—what is typically considered its useful lifetime. While terrible compared to silicon, it’s well beyond what most perovskites have achieved.
They also tested a panel in the South China Sea, attaching it to a small vehicle that could maintain a specific depth and position. The panel charged some coin cell batteries for a couple of hours each at 2, 6, and 10 meter depths. There were no surprises in performance beyond noticing that power fluctuated pretty strongly at 2 meters thanks to sunlight interacting with the surface waves. At the deeper depths, the increased scattering made the light hitting the solar panel much more consistent, though dimmer. At 10 meters, it produced a little less than a quarter as much energy as it did at 2 meters.
The researchers say their design could enable “autonomous marine power systems and submerged Internet of Things infrastructure”—think uncrewed underwater vehicles and sensors, for example. Of course, if you go much deeper, there won’t be enough light to work with. Birdman is still on his own down there.
Joule, 2026. DOI: 10.1016/j.joule.2026.102672 (About DOIs).
Listing image: Richard A. Brooks
Ars Technica has been separating the signal from the noise for over 25 years. With our unique combination of technical savvy and wide-ranging interest in the technological arts and sciences, Ars is the trusted source in a sea of information. After all, you don’t need to know everything, only what’s important.

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KRD Renewables marks 15 years amid rapid growth in Poland’s energy storage market – StreetInsider

KRD Renewables marks 15 years amid rapid growth in Poland’s energy storage market  StreetInsider
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Ohio regulators give rare OK to 149-MW solar and battery project on former coal mine land – The Cool Down

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“Developing a solar project on reclaimed land is an excellent opportunity.”
Photo Credit: Timothy Peshek / U.S. Department of Energy
In Ohio, large-scale solar projects often face strong opposition. However, solar advocates have achieved a relatively easy victory in the state, largely due to the location of their proposed project. 
The Ohio Power Siting Board unanimously approved the Hamden Energy project in Vinton County, a major clean energy development in southeastern Ohio. The project would feature 149 megawatts of solar generation and 149 megawatts of battery storage on reclaimed coal mine land, Canary Media reported.  
While the massive scale alone makes the project noteworthy, the lack of pushback from the Ohio Power Siting Board also was unique.
The main reason for the lack of strong opposition is the project’s location on a brownfield site. As Canary Media reported, developer Recurrent Energy proposed building on reclaimed mine land instead of active farmland.
This decision allowed Recurrent to avoid a common point of conflict in Ohio solar fights, with critics frequently arguing that utility-scale clean-energy projects remove agricultural land from production.
Vinton County is part of Appalachian Ohio, where the mining of coal, iron, and clay once played a major role in the local economy. As those industries have declined sharply over the past century, they have brought the regional economy down with them. About 19% of the county’s residents presently live in poverty, according to Canary Media.
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Proponents of large-scale solar and wind projects have often come up against a 2021 state law that gives officials the authority to block such projects. Notably, that law does not apply to energy production that relies on nonrenewable, extracted fuels like coal and gas. 
According to Canary Media, public feedback on the proposed solar project has been mixed. The most frequent concern was whether reclamation at the site would be finished before construction begins.
Renewable-energy developers often find it easier to obtain approvals on projects located at former mine lands and other industrial brownfields.
However, that does not mean that such locations are ideal. Canary Media reported that RMI, a clean energy think tank, said projects on reclaimed land can cost more than those on undeveloped “greenfield” sites because of remediation needs and other site conditions.
For its part, Recurrent Energy said that construction on the solar-and-battery array will start only after reclamation is complete.
Andy Chow, a spokesperson for the Ohio Department of Natural Resources, told Canary Media that Cheyenne Resources — which holds the surface mining permit for the property — is responsible for the remediation work.
“Developing a solar project on reclaimed land is an excellent opportunity to harvest another one of the area’s abundant resources to power Ohio while providing supplemental tax revenue to support a legacy energy community,” said senior development manager for Recurrent Energy Ali Trunzo, per Canary Media.
Similar projects elsewhere show why reused industrial land can make clean energy easier to site, whether the property is a capped landfill, a former coal mine, or part of a community long tied to coal.
• In Mansfield, Ohio, officials approved solar farms on old landfills to create new local power supplies.
• In Illinois, a former coal mine now hosts 16,000 solar panels, enough to supply electricity to 7,000 homes.
• In Minnesota, Xcel’s Sherco site is becoming a major solar-and-battery hub as coal retires.
• In Scotland, planners are turning an old coal mine into long-duration energy storage for millions of homes.
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Uganda: Utility-scale solar plant commissioned – African Energy

A greenfield, utility-scale solar PV independent power producer (IPP) has been commissioned in Uganda.
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Armenia invites bids for small-scale solar stations – Renewables Now

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Nuenergy Holdings Unit To Invest In 21 MWP Solar PV Facilities – tradingview.com

Nuenergy Holdings Unit To Invest In 21 MWP Solar PV Facilities  tradingview.com
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Lead-free solar powers a battery-free future for health tech – UQ News

UQ chemical engineer Dr Miaoqiang Lyu.
(Photo credit: The University of Queensland. )
Wearable health devices that never need charging are a step closer thanks to next-generation photovoltaic technology that harvests energy from indoor light, as well as the sun. 
While perovskite indoor photovoltaics have emerged as one of the most promising power sources for wearable health devices, toxic lead content has prevented their use in skin-contact applications.
University of Queensland researchers are overcoming this barrier by developing lead-free, low-toxicity and efficient indoor photovoltaics that can be customised to power a range of personal wearable devices. 
UQ chemical engineer Dr Miaoqiang Lyu said indoor photovoltaics could unlock a critical missing capability in wearable health devices: truly energy-autonomous, continuous operation — without batteries, without charging, and without interruption to data collection.
“Wearable health devices such as glucose sensors, ECG patches and sweat-based lactate and electrolyte patches support preventative healthcare and improve quality of life, but limitations with their batteries can be challenging for users,” Dr Lyu said.
“Batteries need regular charging and eventual replacement while indoor photovoltaic technologies have the potential to provide a low-maintenance source of clean energy.”
Dr Lyu has received a UQ Foundation Research Excellence Award (FREA) to progress the work and develop a prototype for powering wearable health monitoring sensors.
The project builds on Dr Lyu’s long-term research developing perovskite photovoltaic technologies that are cost-effective, high-performing and environmentally safer.  
His team has already developed a scalable vapour-deposition method that removes toxic lead and hazardous solvents from indoor photovoltaic manufacturing while delivering record performance for lead-free perovskite devices.  
Dr Lyu said the FREA-supported research will advance lead-free perovskite indoor photovoltaics using thermal evaporation, an industry-compatible process with strong scale-up potential. 

Beyond wearable devices, indoor photovoltaics could contribute to a broader shift toward self-powered electronics that harvest energy from everyday indoor environments. 
“The potential benefits are particularly relevant for people managing chronic illness, and communities in regional and remote locations where access to healthcare services can be more challenging,” Dr Lyu said. 
“If successful, lead-free indoor photovoltaics could help enable a new generation of healthcare devices that are safer, more sustainable and easier to use in everyday life.” 
Dr Lyu is an ARC Future Fellow and Group Leader in UQ’s School of Chemical Engineering.
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Potential solar farm near airport raises concerns – wdtimes.com

A solar farm near Jefferson.
A solar farm near Jefferson.
WATERTOWN — A potential new solar development near the STH 26 Bypass interchange is raising safety concerns among some city officials.
The Concord-Highland Solar Energy Systems project is an approximately 25-acre, 5MW solar array proposed by Seattle-based solar company OneEnergy Renewables. According to OneEnergy proposal documents, the site would provide enough electricity to power around 1,400 average Wisconsin households.
In a Sept. 9 letter to the Jefferson County Board, Watertown Mayor Robert Stocks outlined a series of concerns regarding the development.
One the main concerns was a conflict the solar project would create with the City’s Comprehensive Plan and Future Land Use provisions, adopted in 2019.
“A solar farm is not compatible with the planned mixed-use designation,” wrote Stocks. “It is not contemplated or permitted under the City’s adopted comprehensive plan and would significantly constrain future economic development that the plan identifies as vital for the greater community.”
A final concern was the potential hazard for air traffic to and from the Watertown Municipal Airport. Airport Commission member Eric Wegner referenced the possibility for the Concord-Highland Solar development panels affecting visibility for aviators.
“There are some potential concerns from an aviation and a pilot standpoint,” said Wegner. “We would potentially get some glare, because that is right in the final flight path for Runway 05.”
Wegner explained that he wasn’t sure of any electrostatic or communication issues a solar farm could cause, but said it was a possibility.
“A solar farm located near an aircraft landing zone can create significant safety concerns for pilots, passengers, and people on the ground,” wrote Stocks. “Solar panels can produce glare or reflected light that may temporarily impair a pilot’s vision during critical phases of takeoff and landing.
“I have a son that’s a pilot, and the idea of having glare when you have those little planes trying to make a landing…I’m just concerned about the placement. It’s right straight south of the flight path for both landing and taking off.”
The letter stated that Jefferson County could only issue a conditional use permit for the solar development if the developer met, or agreed to meet, all the requirements specific to the ordinance.
“The city’s position is that OneEnergy cannot satisfy the requirements and conditions of the Jefferson County Solar Energy Systems Ordinance or Wis. Stat. § 59.69(5e), and denial of the conditional use permit would be appropriate,” wrote Stocks.
Mayor Stocks will voice these concerns at a Jefferson County Planning and Zoning Public Hearing on Sept. 17 at 7 p.m.
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Researchers find perovskite solar functions 10 meters below sea surface – pv-magazine-australia.com

A team of scientists have demonstrated that perovskite solar cells can function 10 meters below the surface of the South China Sea.
Study author Wen-Hua Zhang, from Yunnan University and Southwest United Graduate School in Kunming, said there are only few studies reported on underwater solar cells, with all focused on water depths of two meters or less.
“This work presents the first functional validation of submerged solar cells practically operating at a water depth of up to about 10 meters, greatly broadening their application scope,” Zhang said. 
The scientists deployed lead halide perovskite solar cells with a wide-bandgap of approximately 1.96 eV. The research paper explains that in order to achieve efficient and durable submerged perovskites, the team introduced polyhexamethylene guanidine hydrochloride for energy-level modulation.
“This enables the perovskites to convert from p- to n-type, facilitating electron extraction, suppressing halide ion migration, reducing defect density, and improving lattice stability,” the paper adds.
To test their perovskites, the research team developed a customized laboratory system with tailored optical filters that simulated underwater illumination at various depths. Under testing, their submerged perovskite delivered a power conversion efficiency of 34.71% and showed almost no degradation after 1,160 hours under simulated conditions at a depth of 10 meters.
The team then integrated perovskite solar cells with underwater robots, deploying them at a depth of 10 meters off the Weizhou Islands in the South China Sea to test their real-world application.
The large-area modules were found capable of generating 324 mWh of electricity upon underwater illumination for 2 hours at a depth of 10 meters, sufficient to charge lithium-ion batteries and light up LEDs.
Additional accelerated testing outlined in the research paper predicts the cells could have a lifetime almost 5.5 years when submerged at 25°C at a depth of 10 m.
“What surprised us most was [how] much electrical energy our large-area modules generated under real-world conditions at 10-meter water depth for only two hours,” says Zhang. 
“We also achieved scaling from small‑area laboratory cells to large‑size modules,” he added. “The combination of the laboratory investigations and the in-field experiments provides strong evidence for the operation of underwater photovoltaics.” 
The research paper says the findings “pave the way for the practical deployment of perovskite photovoltaics in underwater environments” to power submerged sensors, cameras, and communication systems far from land. 
“This offers a promising route toward self-sustained marine energy systems and autonomous underwater devices,” the paper concludes.
The research work is presented in the study “Submerged solar harvesting with wide-band-gap perovskites for autonomous underwater energy systems,” available in the research paper Joule. 
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Solar Cells that Provide Energy at Over 30 Feet Underwater – Tomorrow's World Today

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The solar cells could operate continuously at a depth of 30+ feet for about 5.5 years.
Solar power works well on land, but it struggles underwater because sunlight is limited at certain depths. As a result, researchers have struggled to power deep-sea cameras or monitors with solar energy.
In recent studies, researchers developed solar cells that operate 32 feet (10 meters) deep in the ocean and could power communication systems or sensors far from shore.
A new study showed these cells can run continuously at a 32-feet depth for about 5.5 years.
“Very few studies have been reported on underwater solar cells, and all of them are focused on very shallow water depths of only two meters or less, a scenario far from catering for requirements of practical application,” Author Wen-Hua Zhang from Yunnan University and Southwest United Graduate School explained.
To fix this, the team built a custom system to mimic underwater light at different depths using wide bandgap cells, which easily absorb blue to orange light. After 1,160 hours in a simulated 32 feet depth, they showed almost no wear and tear and even kept 96% of their efficiency after sitting in a nitrogen gas box for 300 days.
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“This work presents the first functional validation of submerged solar cells practically operating at a water depth of up to about 10 meters (32 feet), greatly broadening their application scope,” Zhang added.
The team attached their perovskite solar cells to underwater robots off the Weizhou Islands to see what would happen. In only two hours, the cells made 324 mWh of energy, enough to charge lithium-ion batteries.
“What surprised us most was so much electrical energy our large-area modules generated under real-world conditions at 10-meter (32 feet) water depth for only two hours,” said Zhang.
“Moreover, we have achieved scaling from small‑area laboratory cells to large‑size modules,” Zhang explained. “The combination of the laboratory investigations and the in-field experiments provides strong evidence for the operation of underwater photovoltaics.”
In the future, the research team wants to test the cells even deeper to find their exact limits and create standard testing rules for underwater solar power.
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Tesla solar owner hit with $3,500 rewire quote, then third party finds broken inverter connectors – The Cool Down

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“That is insane!”
Photo Credit: iStock
A routine service visit turned into a $3,500 rewire quote for a Tesla solar owner. However, when they sought a third-party opinion, an inspection found the issue was far less severe. 
Writing on Reddit‘s r/TeslaSolar, the homeowner said that Tesla diagnosed their malfunctioning array as being “wired completely wrong” and proposed removing the panels so the system could be rewired at a cost of several thousand dollars.
However, when the original poster sought outside verification, the third party found the wiring intact. Instead, the issue appeared to be two broken ribbon cable connectors in the inverter. 
The homeowner said the episode fit a pattern they had experienced with Tesla solar.
“This is the 3rd time Tesla has attempted to scam me with my solar system,” they wrote.
According to the post, Tesla service visits often started with talk of warranty coverage or repairs costing hundreds of dollars, only to quickly balloon into bills costing much more. 
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Additionally, the original poster said Tesla’s installation of the panels had been flawed from the outset. 
Redditors flooded the comments to give their takes and share similar experiences. 
“That is insane!” exclaimed one. “You should file a complaint to the Utility Commission of your State.”
When a home solar system is offline or underperforming, it can significantly reduce expected energy savings, force homeowners to rely more heavily on utility power, and delay the financial return that often helps justify the upfront cost of rooftop solar.
For homeowners facing a large solar repair estimate, one practical step is to request the diagnosis in writing and compare it with warranty terms. Customers can also save screenshots of chats, keep emails, and maintain a timeline of service visits and promises. That record can be useful if a dispute needs to be escalated to a state utility commission, consumer protection office, or another regulatory channel.
A second opinion can also help clarify whether a proposed repair is actually necessary. In this case, the homeowner said Tesla backed away from the quote after they mentioned that a third party would verify the issue.
These Tesla stories highlight the customer-service concerns and business pressures surrounding the company. 
While not about rooftop solar hardware specifically, they touch on some of the same issues raised in the homeowner’s account: support problems, consumer frustration, and the importance of an accurate diagnosis.
• Tesla has tried an AI customer-service solution as complaints about support continued.
• In Europe, falling Tesla sales added pressure as carbon-credit revenue looked less secure.
• In South Korea, battery-related subsidy rules threatened Tesla vehicles’ eligibility for government incentives.
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Jennie deepfake scare at Tokyo festival shows legal threats aren't stopping teen AI abuse – The Cool Down

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The account believed to have first uploaded the clip was suspended.
Photo Credit: Getty Images
After a clip of Blackpink member Jennie at Tokyo’s Summer Sonic festival racked up over 10 million views, fans sounded the alarm that the footage may have been manipulated. The controversy has tested whether legal threats are enough to curb deepfake-related harm.
As David D. Lee of the South China Morning Post said, the episode was a new flashpoint in South Korea’s battle against artificial intelligence-enabled sexual abuse.
After the clip spread online showing what appeared to be a “wardrobe malfunction,” fans picked through it, arguing it showed signs of AI editing and calling for it to be taken down. The video came from Jennie’s headline performance, during which she turned away from the crowd, adjusted herself, and then continued the set.
The account believed to have first uploaded the clip was suspended, according to Lee, but there has been no announced police or prosecutorial action.
SCMP presented the issue as part of South Korea’s fight over AI-enabled sexual abuse, saying that legal threats have not deterred many teenage offenders.
Deepfakes can be especially explosive, as a clip can spread quickly before facts are clear. Even if a post is removed, copies and screen recordings can continue to circulate.
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The damage also stretches beyond celebrities. AI-generated or AI-altered sexual content can target ordinary people, turning private humiliation into a public and searchable ordeal.
As Lee covered, South Korea updated laws in 2024 following sex crime rings that shared faked images of women and girls, including students, on encrypted Telegram channels. Those new laws featured prison time for up to seven years.
“But the newer deepfake cases were different in one crucial aspect: demonstrating how convincing abuse material can now be conjured from an ordinary photo, then rapidly circulated and viewed by large numbers of people, before anyone – victim or investigator – knew who had made it,” Lee wrote.
And it seems the problem has not exactly gone away on the heels of the new laws, either.
“The Jennie case shows why. Before any prosecution can begin, investigators need to establish whether the footage was indeed fabricated, trace who posted it first and prove whether those who shared it knew it was fake,” Lee wrote.
That’s not always an easy case to make. Lee spoke to An Gab-chul, a lawyer at Gammyung Law Firm in Seoul, who said, “In the case of anonymous accounts, it can take a long time to identify the actual user. Investigators often have to contact operators of overseas servers to determine who is behind an account before the person behind the account shuts it down or destroys evidence.”
Several lawyers and groups, such as Amnesty International Korea, are working to address the problem from both a legal and cultural position, trying to get at the root of the issue.
“This is not something that can be solved simply by strengthening the law, like an endless game of cat and mouse,” Bang Suk-ho, head of the AI industry center at Seoul law firm Lin LLC, told Lee.
In a statement, OA Entertainment said Aug. 18 it had “recently identified ongoing misconduct targeting the artist [Jennie] across online communities and social media platforms,” SCMP reported. The company said it was working with lawyers on civil and criminal action and promised “no compromise or leniency whatsoever.”
This is one example of how AI-related harm can spiral. AI content can also highlight concerns over the technology’s social and infrastructure costs.
• At the Chicago Sun-Times, an AI-generated summer reading list embarrassed editors.
• At a global summit, leaders warned AI may become an engine of inequality.
• Across the tech sector, backlash is growing as AI strains jobs, water, and power.
• Lawmakers are being pushed to require revelations about data centers as AI’s footprint grows.
• Utilities are signing unprecedented deals with the industry as AI data centers drive up demand.
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The race for space solar is on as satellite demand opens a high-value market – thecooldown.com

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Money is pouring into the space sector in general as well.
Photo Credit: iStock
Spacecraft have relied on sunlight for electricity for decades. As satellite launches accelerate, that established power source is also becoming a rapidly expanding business niche.
Professional accounting firm PwC expects the space economy to reach $2 trillion by 2040, according to pv magazine. That outlook is increasing interest in solar panels for orbit that are lighter, cheaper, and more durable.
One sign of the sector’s momentum came from the 2026 conference circuit. Space solar drew added attention at three U.S. events cited by pv magazine: the Space Power Workshop in Torrance, the Space Photovoltaics Research and Technology Conference in Cleveland, and the Small Satellite Conference in Salt Lake City. Established aerospace suppliers and newer solar companies had large presences there.
According to pv magazine, spacecraft have largely depended on III-V semiconductors like gallium arsenide. Those materials can exceed 30% conversion efficiency and tolerate the intense radiation of space, but supply is tight. Annual production is still below 5 megawatts, and power delivery takes a long time.
That limited supply is creating room for competing approaches. On May 20, York Space Systems said it would acquire space-solar company Solestial in a $67 million cash-and-stock deal. Solestial makes ultra-thin crystalline-silicon solar cells and modules for use in space.
Money is pouring into the space sector in general as well. The Space Foundation said private investment in space enterprises totaled $28.7 billion in April 2026 alone, and York Space Systems’ January IPO raised $4.75 billion.
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Services people use every day — including weather forecasting and internet access — all rely on powered spacecraft. Cheaper, more dependable solar systems in orbit could broaden those capabilities while slowly reducing operating expenses.
Lower launch prices are a key driver of these changing economics. PwC said the cost of reaching low-Earth orbit has “fallen steeply” to around $907 per pound ($2,000 per kilogram) or less. The firm added that although “deploying heavy materials into orbit remains a logistical hurdle,” reusable rockets and more frequent launches could make power-to-weight tradeoffs less restrictive.
That changing cost picture could benefit crystalline silicon, which is already common in Earth-based solar manufacturing. It is also opening the door for perovskite solar cells, a next-generation technology discussed by researchers and companies at NASA’s Glenn Research Center Space Photovoltaics Research and Technology Conference.
If perovskites can deliver strong efficiency at lower cost, they could cut the price of powering satellites. The biggest challenge is durability, since space hardware must endure radiation and long missions without failing after an expensive launch.
Both government and industry are trying to accelerate development. On Aug. 31, the U.S. Department of Energy posted details for its $12 million Space Photovoltaic Research and Development Program, and TechWerx is overseeing the grant process through Oct. 8, pv magazine reported.
Testing-equipment companies are adapting too. Eternal Sun said in December 2025 that it was supplying LED-based solar simulators calibrated for air mass zero testing, which helps companies more accurately assess how solar devices are likely to perform in space.
In the Space Foundation’s words, space solar is a “foundational technology” for the continued expansion of orbital operations.
Falling launch costs and rising satellite demand are pushing space-solar research in several directions.
• Engineers are testing creative uses of solar power that stretch from buildings to orbit.
• New materials strategies like new defect-pacifying perovskites could lower solar costs in orbit.
• At the University of Michigan, size and configuration are proving crucial to cheaper perovskites.
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Rocket Lab unveils a 31.5%-efficient solar cell built for space, squeezing more power from every inch of spacecraft surface – Energies Media

Energies Media
Solar energy companies are becoming more experimental with the projects that they are pursuing and the ones that are set to be at the forefront of next-generation solar production. Previously, solar companies were hesitant to invest tremendous amounts of money into solar projects because of the intermittency issues associated with them. However, nowadays, there is an ongoing trend of combined solar energy generation and storage facilities in the United States. The most recent company to bring another captivating project is Rocket Lab, as it unveiled a 31.5%-efficient solar cell built for space, squeezing more power from every inch of spacecraft surface.
Rocket Lab’s rocket is the world’s most frequently launched orbital small rocket; its HASTE rocket provides hypersonic test launch capability for the U.S. government and allied nations; and its Neutron launch vehicle in development will unlock medium launch for constellation deployment, national security, and exploration missions.
It is interesting to witness the huge number of companies that are dedicating time and money to energy projects even though they occupy a different field. Rocket Lab’s spacecraft and satellite components have fostered more than 1,700 missions spanning commercial, defense, and national security missions, including GPS, constellations, and exploration missions to the Moon, Mars, and Venus 
The energy industry was left enthusiastic after a press release from Rocket Lab announced the production release of Inverted Metamorphic (IMM) Apex, the latest iteration of its next-generation solar cell designed to deliver exceptional efficiency and reliability for space applications. The forward-thinking nature of the company is among the reasons why it will be at the forefront of future projects that incorporate modern-day technology and methodologies.
IMM Apex possesses a Beginning of Life solar conversion efficiency of 31.5% and 400% lower cell mass, giving it best-in-class specific power (watts per kilogram) while also maintaining a high level of radiation hardness and performance over temperature. When a company discovers a new way of energy generation, it is bound to receive a tremendous amount of attention, with various companies aiming to apply its blueprint within their own initiatives.
IMM Apex is free of the germanium substrates that have been used for conventional, multi-junction solar cells produced for the last three decades. As such, the company deserves credit for taking a massive step in the advancement of the solar energy industry and setting a new standard. By eliminating dependence on this integral mineral, IMM Apex combats increasing costs and supply chain restrictions that are facing the space power industry at the moment.
IMM Apex is a mechanical and electrical drop-in replacement for heritage solar cell products on germanium, meaning customers can integrate it into existing systems without major investments to retool for new cell technology.
Nowadays, energy companies are finding new ways to improve their facilities without necessarily having to revamp them and invest a huge amount of money. IMM Apex capitalizes on the proven success of Rocket Lab’s IMM cell technology, which powered NASA’s Ingenuity Mars Helicopter during its mission and has been powering satellites in orbit for over a decade.
Industry experts predict that the solar energy industry is on course to evolve significantly in the upcoming years, especially if companies like Rocket Lab continue pursuing such initiatives. Brad Clevenger, President of Rocket Lab USA, stated the following:
“Rocket Lab is excited to bring this cutting-edge solar solution to market. IMM Apex delivers exceptional performance while addressing real-world challenges like rising material costs and supply chain constraints.”
There is healthy competition in the solar energy sector as companies are competing to become standout pioneers that execute groundbreaking projects. Rocket Lab is a leading space company that has developed a reputation for providing launch services, spacecraft, payloads, and satellite components serving commercial, government, and national security markets.
Prince is a versatile writer focused on energy, automotive, environmental, and general news topics. He makes complex technical and policy issues clear, engaging, and accessible for a broad audience.
Prince is a versatile writer focused on energy, automotive, environmental, and general news topics. He makes complex technical and policy issues clear, engaging, and accessible for a broad audience.
Prince is a versatile writer focused on energy, automotive, environmental, and general news topics. He makes complex technical and policy issues clear, engaging, and accessible for a broad audience.

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First Tellurium pushes solar past daylight – Metal Tech News


The Elements of Innovation Discovered
Metal Tech News – September 14, 2026
PyroDelta Energy is developing a tellurium-based thermoelectric film designed to generate supplemental electricity from conventional solar panels when sunlight is reduced or unavailable.
Extending its tellurium-based thermoelectric technology into solar power, First Tellurium Corp. subsidiary PyroDelta Energy is developing a thin film designed to generate supplemental electricity from conventional solar panels during periods of reduced or no sunlight.
Even as solar has become a major source of new electricity generation, its productive window remains tied to available sunlight, creating an opening for technologies that can extract additional power from the same installed infrastructure beyond peak daylight conditions.
One route toward extending that productive window is to pair conventional photovoltaic generation with a second process that can respond to conditions the solar cells themselves do not use, adding output without changing how the panels capture sunlight.
Fitting that role, thermoelectric generation converts temperature differences directly into electricity through solid-state materials without moving parts, allowing panels to draw on thermal energy when sunlight alone is no longer producing as much power.
Built around that process, PyroDelta’s tellurium-based thermoelectric technology traces back to development work underway since at least 2016 and has since expanded across applications ranging from vehicles and data centers to heavy-lift drones.
Turning the same approach toward solar installations, the company is now developing a thermoelectric film that could be applied to the back of conventional photovoltaic panels without requiring changes to their basic design or supporting infrastructure.
Instead of competing with the photovoltaic cells that generate electricity from sunlight, the film is intended to operate alongside them by capturing temperature differences between the panel surface and its surrounding thermal environment, including heat retained and radiated from the ground.
That distinction could allow an installation to continue producing some electricity as solar irradiance falls or disappears, provided enough of a temperature differential remains for the thermoelectric material to operate.
“We estimate our thermoelectric film is about 11% to 12% efficient,” said PyroDelta Head Engineer Michael Abdelmaseh. “Conventional solar panels today typically operate at efficiencies of about 20% to 22%. Our objective is not to replace photovoltaic generation, but to complement it by capturing energy from temperature differentials when solar irradiance is low or unavailable.”
Still at an early stage of development, the concept is being designed around conventional solar hardware rather than a new panel architecture, opening the possibility of incorporating the film into new installations or applying it to existing systems if further development and testing prove the technology viable.
For PyroDelta, however, advancing the solar concept remains secondary to its current effort to commercialize a heavy-lift drone platform built around the same broader thermoelectric technology.
Earlier this year, the company applied its heat-to-power platform to a heavy-lift drone design developed for the U.S. Defense Advanced Research Projects Agency Lift Challenge, integrating thermoelectric generation into an effort to generate supplemental electricity and extend aircraft range.
“Michael has been developing the solar concept for some time,” said First Tellurium President and CEO Tyrone Docherty. “Our immediate focus remains the drone technology, which we believe represents the most direct path to commercialization and an important opportunity to demonstrate the broader potential of our thermoelectric technology. As we establish markets for the drones, we intend to advance other applications, including solar.”
Positioned behind that near-term drone effort, the solar film adds another potential application for the company’s thermoelectric platform, with development now focused on whether temperature differences already present around conventional photovoltaic panels can be harvested without requiring fundamental changes to the installations themselves.

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Armenia invites bids for small-scale solar stations – renewablesnow.com

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