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Sunday, July 19, 2026

Greentech New Deals in the Cities

Source: Originally published by Z. Feel free to share widely.

In Trump’s America the Greentech Revolution is being waged from below.

Although Trump’s attacks have slowed the advance of fossil-free technologies in the US, they have not prevented communities, cities, and states from creating their own Greentech New Deals. They are taking advantage of the enormous reduction in the cost of renewable energy and of technologies that use it despite Trump’s attempts to obliterate them.

Alongside the widespread pro-democracy resistance to Trump and MAGA, there is a constructive program being developed and implemented from below, utilizing the Greentech Revolution to make Green New Deals practical and affordable. Greentech and climate protection are at its core. But it also includes the full range of pro-people, pro-social programs represented by the Green New Deal.

Back in 2007, Xcel Energy won backing from the governor of Minnesota for a gas power plant in Becker, near Minneapolis, designed to replace coal-fired generators scheduled for shutdown in the mid-2020s. But clean energy advocates campaigned for better and cheaper alternatives, and regulators eventually baulked at the $1 billion price tag. Xcel gave up on the gas plant plan and instead proposed the Sherco Energy Hub, a 710-megawatt solar facility which includes a 600-megawatt storage system, the largest battery energy storage system in the Midwest. An Xcel spokesperson said, “Batteries help us store energy when it’s inexpensive to produce and dispatch it when needed, allowing us to continue delivering reliable electricity to customers while keeping bills low.” The site will also provide grazing for nearly 2,000 sheep, reducing mowing costs while also letting local sheep farmers expand their herds. Xcel also announced plans to close all its remaining coal fired plants in the region. Sherco’s solar plant will start producing electricity in 2026.

Sherco shows how Greentech’s reduction in the cost of energy and facilitation of battery storage opens the door for communities and governments to demand that fossil fuels be replaced by renewable energy. As climate journalist Tina Casey commented on CleanTechnica, the Sherco facility “demonstrates how community efforts and basic economics can push the needle on the energy transition.”

Manchester Public Schools is a suburban school district outside of Hartford CT with 17 schools, four of which are Title I schools serving low-income communities. While the state had many solar programs, by 2020 private solar developers had concluded that Manchester would “never do a project.” But in 2022, with support from the Connecticut Green Bank, solar panels were installed at 6 of Manchester’s 17 public schools, adding 1.6 MW to the town’s solar energy capacity. Now Manchester has three net-zero energy school buildings and is adopting cutting-edge technologies like ground source heat pumps. Manchester also has additional ongoing investments in net-zero buildings, including a new library. Solar installations are projected to save the Town of Manchester approximately $100,000 annually. Beyond financial savings, these renewable energy systems are now valuable educational tools, reportedly sparking curiosity and environmental awareness among students.

In Seattle, drayage trucks contribute significantly to air pollution, disproportionately impacting low-income communities along freight corridors in the Duwamish Valley. According to Seattle’s then-mayor Bruce Harrell, “Seattle’s port is the backbone of our economy, but diesel drayage trucks that transport goods are some of the Duwamish Valley neighborhoods’ heaviest polluters.” Seattle has now developed a Heavy Duty Electric Trucks Pilot to provide incentives for purchasing electric drayage trucks. The program results in part from interviews conducted with drayage truck drivers who pointed out electric trucks were too expensive for them to buy. The drivers’ insights helped shape a new approach that, according to the city’s Office of Sustainability and Environment, “centers equity to ensure a just transition for truck drivers, particularly independent owner-operators, who are critical to our region’s supply chain and who bear disproportionate environmental and economic burdens.”

Funding for the program comes from Seattle’s JumpStart Payroll Expense Tax on extremely high salaries. The funding was recommended by Seattle’s Green New Deal Oversight Board, which develops budget and policy recommendations for environmental initiatives in partnership with communities. Said then-Mayor Harrell, “Through the Heavy Duty Electric Trucks Pilot, we’re investing in the technology that will ultimately reduce emissions in frontline communities while also supporting drivers to ensure they have real opportunities in the zero-emission economy.” The trucks are expected to be in operation by the end of 2026.

The drayage truck program is only one small component of Seattle’s much broader community participation climate effort. For example, Greenspace, Seattle’s Office of Sustainability & Environment, partnered with Seattle’s Green New Deal Oversight Board, the Martin Luther King Jr. County Labor Council (MLK Labor), and the Urban League of Metropolitan Seattle to pilot “climate community assemblies” that included union members and workers, community members, and social justice and youth advocates to make decisions, influence government, and shape solutions. The Urban League’s neighborhood-based assembly focused on climate preparedness for BIPOC and working-class community members. MLK Labor, a labor council representing more than 100,000 workers in King County, led a worker assembly focused on workplace safety, green job standards, and improving public infrastructure to be ready for extreme weather. A follow-on project will turn ideas developed by the assemblies into policies for the city. And future community assemblies will help shape Seattle’s Climate Action Plan Update.

On the site of an abandoned psychiatric hospital in Southeast Washington, DC, a renewable energy project called Sycamore & Oak has just opened a “microgrid” — a self-contained system that includes energy generation and consumption. Solar panels provide electricity during daylight hours and charge batteries that continue to provide electricity during the night. The project’s workforce development program trained a cohort of 10 local residents, most of whom are from Ward 8 where the project is located, for the installation. According to Jordan Taylor of GRID Alternatives, the nonprofit that provides solar installation and workforce development for the project, “Ultimately the Black-owned businesses that are supported by Sycamore & Oak get to receive lower-cost power.” With fuel-based energy, “you’re emitting fossil fuel pollution into the local community,” which is “usually a low-income or disadvantaged community.” Taylor said that improvements in building science are not only better for the environment, but more cost-effective. These range from construction techniques to long-term energy usage over the lifetime of a building. “We can build the same structure for 90% less energy consumption. That’s both a cost-savings measure, as well as an energy efficiency and ecologically friendly one.”

In June 2026, Montgomery County MD announced 20 clean energy and energy efficiency projects. According to the Montgomery County Executive, the initiatives will “support practical projects that improve energy efficiency, strengthen emergency preparedness, and create more resilient public spaces, particularly in communities that are more vulnerable during extreme weather events. These investments will lower long-term operating costs for taxpayers while helping the County make meaningful progress toward our climate goals.”

The projects have a strong Greentech element. They include solar-powered backup systems at seven recreation centers; an agrivoltaics demonstration project at the Agricultural History Farm Park; and building automation system upgrades. County official David Dise says, “We are proudly advancing Montgomery County’s climate goals through innovative green energy solutions, including microgrids and resilience hubs.”

In the Bryant community in Ann Arbor MI, a quarter of residents spend more than a third of their incomes on utilities. After years of campaigning by local energy activists, 80% of Ann Arbor voters approved a new Sustainable Energy Utility. Operating alongside the existing privately-owned utility, the SEU will purchase, install, and maintain solar panels, battery backup systems, and other fossil-free energy infrastructure in residents’ homes. Those who choose to join pay a small monthly fee – far less than they save from their free solar installation. The city will own the facilities, but residents can sell whatever electricity they don’t need themselves. The plan will pilot in Bryant and spread to other locations in the city. The SEU could also build its own microgrids, for example putting solar panels on schools to provide power during school hours and then supplying other SEU users when school is out. Derrick Miller of the nonprofit Community Action Network says, “When we started having a conversation about how to decarbonize the neighborhood about four years ago, it felt outlandish. Now, it doesn’t feel like anyone can stop us.”

Alongside the Cow Palace arena just south of San Francisco, construction has begun on the Cormorant Energy Storage Project, whose 250-megawatt capacity will make it the largest battery array in any major US urban area. It will supply energy to MCE, a community choice aggregator which purchases electricity on behalf of local residents as an alternative to for-profit utilities. The battery will bring $73 million of property tax revenue to Daly City; the developer will donate $1.5 million in community benefits.

These are only a small sampling of the Greentech-facilitated programs in American cities, but they illustrate the diversity of such initiatives. They show that Greentech-facilitated programs are in place in every region of the country, in jurisdictions large and small, and in localities blue and red, exhibiting myriad forms of both energy production and energy consumption.

Such initiatives have been retarded by Trump’s attempts to wipe out Greentech. They have also met resistance from local MAGA and NIMBY forces. But as these examples show, they are continuing to bloom.

These initiatives are significant for several reasons. They directly improve the lives of the people they affect and reduce the emission of climate-destroying greenhouse gases. They demonstrate concretely how climate protection, racial and economic justice, grassroots democracy, and quality of life can be combined. They show that people acting together can overcome Trump’s anti-Greentech counter-revolution. And looking forward, they lay a foundation for the triumph of a Greentech New Deal once Trumpian resistance is overcome.

Source: Originally published by Z. Feel free to share widely.

While Trump conducts his war against Greentech, many US states are forging ahead with energy expansion based on sun, wind, and water. Greentech’s slashing of the cost of renewable energy production and use has made states turn to it not only to protect the climate but to make energy affordable for their people.

A photo of Donald Trump in the Oval Office with several of his Executive Orders, January 20, 2025. Photo credit: The White House, public domain.

The US federal system gives states a powerful position in energy policy. States regulate electric generation, local distribution of electricity, and infrastructure siting. They can set policy in myriad other areas from urban planning to public transit to housing that can help shape the utilization of climate-protecting Greentech.

Meanwhile, recent headlines have publicized retrenchment in state climate policies. New York state abandoned its commitment to reduce greenhouse gas emissions by 40% from 1990 levels by 2030, substituting weaker and squishier targets. California also relaxed requirements for emission reductions – although the change continues to be contested in the state legislature. In both cases energy affordability was given as a reason, although advocates of both changes acknowledged that they would not bring down energy prices any time soon. Both New York and California changes were preceded by heavy fossil fuel industry lobbying.

Such retreats register the reality that Trump’s attacks are restricting the development of the Greentech New Deal. Federal defunding of climate-protecting initiatives has made them more expensive; regulatory changes and subsidies have advantaged fossil fuels; and legal attack has undermined the Greentech revolution. But these retreats should not conceal the advances the Greentech Revolution has made in US states even during the first year-and-a-half of the Trump era.

Today’s Greentech advances in the states typically combine climate protection with affordability. That’s possible because Greentech has made production and use of renewable energy so much cheaper – rendering fossil fuels non-competitive.

California–Two steps forward, one step back?

California’s electricity is increasingly coming from solar. Photo credit: Tom Brewster Photography, Wikimedia Commons, CC BY 2.0. Data Source: US Energy Information Administration

California, now the world’s fourth largest economy, illustrates the collision of the irresistible force of the Greentech Revolution with the immovable object of the Trumpian fossil fuel counter-revolution. In recent years it has faced devastating heatwaves, droughts, storms, wildfires, and other extreme weather conditions resulting from global warming. Not surprisingly, an overwhelming proportion of Californians worry about climate change and back policies to fight it. In 2006 California passed AB 32, the Global Warming Solutions Act, which set targets for greenhouse gas emissions and sets a declining limit on total emissions by the state’s major polluters. Over the next twenty years California substantially raised its targets and implemented many other climate protection policies. From 2001 to 2019, California reduced its carbon emissions by 25%, leaving a typical Californian emitting only half as much as other Americans.

In 2024, California’s natural gas generation fell by 8%; coal is expected to soon be eliminated entirely from its electrical supply. By the end of 2025 the state had 2.5 times more battery storage available than it did in 2022.

As soon as Trump was inaugurated president, he began a massive attack on California’s climate protection efforts. For example, he attacked the state’s first-in-the-nation ban on the sale of new gas-powered cars by 2035. The state sued to preserve the ban. In 2025 it extended the cap and trade program, renamed cap and invest, by 15 years. Then Governor Newsom, under heavy lobbying from California’s oil industry, announced a new plan which offers free pollution permits worth as much as $4 billion to oil refineries and other major polluters. Legislative leaders are refusing to accept the plan, however, and have refused to fund many of Newsom’s other programs until he abandons his plan. Contested negotiations are expected to continue until the legislative session ends in September. The result is hanging in the balance.

Other states go Greentech

The California climate drama should not obscure what is happening in other states.

Soon after Trump’s inauguration, Massachusetts Gov. Maura Healey issued an executive order that directs the state to procure 10 GW of clean energy and 5 GW of battery storage by 2035. The governor’s office projects up to $10 billion in savings for residents and businesses. Massachusetts also announced $180 million in immediate utility rate reductions. This cut residential electricity bills by up to 25 percent for two months.

Upon her inauguration, New Jersey Gov. Mikie Sherrill declared a state of emergency on utility costs. An executive order directed the New Jersey Board of Public Utilities to pursue rate relief by pausing new hikes and delivering residential bill credits. Another ordered rapid expansion of solar and battery storage and streamlining of the permitting process. In March, the BPU approved the expansion of the state’s community solar program, adding 3 GW of new capacity, with low-income households guaranteed a discount of at least 25 percent on their bills. According to American Progress, this expansion was the largest of a state-run program in the country’s history, and the program has already delivered more than $70 million in bill credits to households across the state. The governor also signed a measure that increases transmission-scale storage across the state, helping store low-cost clean energy and deploy it during peak demand to reduce price spikes and improve reliability.

In Pennsylvania, the PA EDGE (Pennsylvania Economic Development for a Growing Economy) creates tax credit programs for billions of dollars in energy and advanced manufacturing investment, including clean energy technologies. In June 2026 the Pennsylvania House put a cap on profits from utility company investments in infrastructure and eliminated nearly $1.7 billion in taxes that electricity companies now pass along to consumers as part of their bills.

In Virginia, a clean energy package includes streamlining solar siting, expanding storage connections to the grid, limiting carbon-emitting backup generators at data centers, and expanding virtual power plant programs that let utilities draw on distributed clean energy sources such as rooftop solar and home batteries.

The obstacles fall

One of the main objections to renewable energy has always been that it becomes unavailable when the sun doesn’t shine or the wind doesn’t blow. This objection has been largely overcome by Greentech’s radical reduction in the cost of energy storage. As a result, the most recent wave of state programs has put battery storage front and center.

Illinois’s Clean and Reliable Grid Affordability Act instructs the state to procure three gigawatts of new battery storage by 2030 to help stabilize electricity prices. It also includes a “storage for all” program that provides incentives for income-qualified households and businesses to install battery systems co-located with solar projects. The Illinois Power Agency expects the act to save customers $13.4 billion over two decades.

Pennsylvania is investing $22 million to help battery manufacturer Eos Energy Enterprises expand battery manufacturing operations in the Pittsburgh area. The expansion is expected to create 735 new jobs in Allegheny County. Last year the workers at Eos Energy voted to join the United Steelworkers Union. Eos also announced a plan to develop energy storage projects across Pennsylvania.

New technology doesn’t always mean greater complexity. Witness the emergence of small solar systems that hang on a balcony and plug right into a wall socket. More than a million homes in Germany now have such “balcony power plants,” but they are forbidden in the US. Last year the Utah legislature voted unanimously to let residents use plug-in collectors. 23 other state legislatures are now considering similar bills. According to the New York Times, such legislation would “eliminate one of the technology’s biggest barriers in the United States”: homeowners or renters could install plug-in systems “without approval from their local utility.”

A common complaint against large-scale solar projects is that they use up land that would otherwise be available for agriculture. However, solar projects are now actually supporting agriculture by the new techniques known as agrivoltaics. State policies are now promoting agrivoltaics. Last year, the New Jersey Board of Public Utilities launched a new dual-use pilot project to organize and accelerate agrivoltaics development in the state. The three-year pilot program calls for up to 200 megawatts of solar power, with Rutgers University applying its agrivoltaics research to develop best practices and guidelines. Connecticut, Maryland, and Virginia also have agrivoltaics programs under way.

Renewable energy projects can also contribute to improved land use by utilizing currently degraded spaces like landfills and contaminated industrial sites. An example is New Jersey’s Brownfields Redevelopment Incentive Program, accompanied by a Landfill to Solar online guide for local governments and solar developers, created by the Governor’s Office of Climate Action and the Green Economy. An already completed example is the Toms River project, the largest solar power plant in New Jersey and also the largest solar array on a Superfund site anywhere in the US.

Beyond the blue

Wolf Ridge Wind Farm in Muenster, Texas. Photo credit: Ben (Out with the Old, In with the New), Wikimedia Commons, CC BY-SA 2.0.

The expansion of Greentech in the Trump era has by no means been limited to blue states. Some of the most extensive installations of Greentech are in red states – witness Texas. Utility-scale solar plants produced 45 terawatts from January through September, 2025, up 50% from 2024 and nearly four times what they generated in 2021. Wind power also continued to climb, producing 87 terawatts through September – a 4% increase from 2024 and 36% more than in 2021. Together, wind and solar supplied more than a third of Texas’ electricity in the first 9 months of 2025. Battery use is also growing. Three of the four largest US battery storage projects scheduled to open in 2026 are in Texas. Solar collection and battery storage are now being systematically combined: one dual project is adding 837 megawatts of solar power and 418 megawatts in battery energy storage capacity.

In Nevada, generally regarded as a “purple” state, a third of all energy demand is now met by solar panels. The state has the highest solar electricity generation per capita in the country, as well as the most solar-industry jobs per capita. The goal of producing half of its electricity from renewables by 2030 is enshrined in the state’s constitution. The Las Vegas region has the highest concentration of residential rooftop solar in the continental US. The city’s chief sustainability officer attributes this in part to the city’s easy permitting. “You’re pretty much in and out of our office with a permit in 30 minutes.”

In the absence of federal support, states are reaching out to each other to create regional alliances to implement Greentech. For example, thirteen states have formed the Geothermal Power Accelerator collaboration to rapidly expand geothermal power development. Another example: The California State Legislature passed Assembly Bill 825 to begin the process of establishing a regional electricity partnership across the West. In late June, the state of Washington joined the partnership along with California and Quebec. And, after briefly withdrawing, Virginia rejoined the 11-member northeastern Regional Greenhouse Gas Initiative.

In some states like Texas, the Greentech boom is occurring without much attempt to reap its potential social benefits. But in many states, as we will see in a subsequent commentary in this series, the Greentech revolution is enabling a broader program for jobs and justice that embodies the principles of the Green New Deal. That in turn is laying the basis for a national Greentech New Deal to come.

Looming over recent climate politics has been the issue of energy affordability. Because Greentech has made the production and use of renewable energy so much less costly than fossil fuel energy, states have accelerated their introduction of it. But the energy cost squeeze on consumers has in some cases also led states to shortsightedly reduce investment in Greentech and unleash fossil fuels.

These dynamics are now being exacerbated by the escalation in fossil fuel prices and the threat of energy insecurity that have accompanied the Iran war. The relative expense and unreliability of fossil fuel energy is likely to accelerate Greentech in the states. States that don’t want to render their economies “stranded assets” should go all out for the Greentech revolution right now.


This article also appears in Jeremy Brecher’s STRIKE! newsletter.


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Jeremy Brecher is a historian, author, and co-founder of the Labor Network for Sustainability. He has been active in peace, labor, environmental, and other social movements for more than half a century. Brecher is the author of more than a dozen books on labor and social movements, including Strike! and Global Village or Global Pillage and the winner of five regional Emmy awards for his documentary movie work.

Thursday, June 11, 2026

 Nuclear News


China Unveils Nuclear-Powered Floating Hub for Zero-Emission Shipping

  • Jiangnan Shipyard — a subsidiary of state-owned China State Shipbuilding Corporation — unveiled a nuclear-powered floating logistics hub at the Posidonia International Shipping Exhibition in Greece, designed to serve as a container transshipment terminal, energy production centre, and vessel charging station.

  • The platform's core power source is a molten salt reactor, supplemented by solar and wind, capable of producing hydrogen, ammonia, and synthetic green fuels for both terminal operations and support vessels.

  • The concept builds on Jiangnan's 2023 nuclear containership design — which received DNV approval in principle — and comes after the company secured manufacturing and installation licences from China's nuclear safety authorities earlier this year.

China has proposed a large offshore logistics platform powered by nuclear energy that would function as both a cargo transfer hub and a refuelling/charging centre for ships, according to the South China Morning Post.

The concept, unveiled by Jiangnan Shipyard, combines port infrastructure, energy generation, and cargo handling into a single floating facility aimed at reducing emissions in maritime transport. The project was presented at the Posidonia International Shipping Exhibition in Greece.

The SCMP writes that the platform would rely on a molten salt reactor as its primary energy source, supplemented by renewable technologies including solar and wind power. It would also feature systems for hydrogen production, synthetic green fuels, and electricity distribution. According to the company, the facility could generate clean power and fuels such as ammonia for both terminal operations and electric support vessels.

Jiangnan argues that molten salt reactor technology offers significant safety benefits because it is resistant to conventional meltdown scenarios and the coolant solidifies quickly if released, limiting the potential impact of leaks.

Designed to support international shipping lanes, coastal transport links, and cargo transshipment, the floating hub could also be replicated at other strategic ports thanks to its modular design.

The proposal builds on Jiangnan's ongoing work in nuclear-powered shipping. In 2024, the company revealed plans for a large container vessel powered by a thorium-based molten salt reactor. Meanwhile, Chinese scientists have continued advancing the technology, recently demonstrating a successful conversion of thorium into uranium fuel within a molten salt reactor system. Thorium is widely viewed as a more abundant alternative to conventional uranium fuel.

By Zerohedge


World Nuclear News


Chile and Argentina sign nuclear cooperation agreement


Collaboration between Chile and Argentina will focus on research reactors, radiopharmaceuticals, applications of nuclear technology in health, agriculture, industry and mining as well as other areas.
 
(Image: CCHEN)

The two countries have had agreements on cooperation in the area of peaceful uses of nuclear technology dating back to 1976.

This latest agreement was signed by representatives of Argentina's National Atomic Energy Commission (CNEA) and the Chilean Nuclear Energy Commission (CCHEN).

It was signed for the Argentine side by CNEA President Martin Porro, who called it "an important milestone in the field of bilateral and regional cooperation, given that the Chilean Nuclear Energy Commission is an institution with which we have been working closely for years on a wide variety of issues, including within the framework of International Atomic Energy Agency initiatives such as the Latin American Research Reactor Network".

Richard Gonzalez, acting executive director of Chile's CCHEN, said: "We are very pleased to have consolidated and finalised this cooperation and mutual collaboration agreement. This will boost science and technology in our country … working in collaboration with the CNEA allows us to enhance our technological development in Chile."

The form of cooperation set out in the agreement includes information exchange technical visits and joint research and technological development projects and programmes.

The two organisations said the areas covered are: research reactors and their applications; radiopharmaceuticals; applications of nuclear technology in health, agriculture, industry and mining; nuclear and radiological safety; human resource training; used fuel management; modernisation and management of technological aging, especially of nuclear reactors; and scientific and technical assistance in nuclear power.

Argentina has three nuclear reactors generating about 7% of its electricity. Its first commercial nuclear power reactor began operating in 1974. It had been developing the CAREM25 small modular reactor, but work on that has been halted under the current government. Uranium exploration and some mining was carried out from the mid-1950s, but the last mine closed in 1997 for economic reasons. It also has a long history with research reactors, including the RA-10 research reactor which is currently under construction.

The Chilean Nuclear Energy Commission has operated the RECH-1 research reactor since 1974. This reactor is located at La Reina Nuclear Centre in Santiago. It is a 5 MW pool-type reactor using low-enriched uranium fuel assemblies, light water as moderator and coolant, and beryllium as reflector. The main use of the RECH-1 reactor is the production of radioisotopes, mainly for medicine. In addition, irradiation of samples is carried out for chemical analysis and geological material, for purposes of determining age and preparing radioactive tracers. Chile does not have any nuclear energy plants, but there have been various proposals to develop some in the past.

BN-1200 targeted for construction start in 2027


Site clearance work has been taking place for the proposed sodium-cooled fast neutron BN-1200 reactor at Beloyarsk Nuclear Power Plant.
 
(Image: Rosatom)

The unit, which will be the fifth at the site in Russia's Sverdlovsk region, will become the world's largest fast-neutron reactor.

The sodium-cooled BN-series fast reactor plans are part of Rosatom's project to develop fast reactors with a closed fuel cycle whose mixed-oxide (MOX) fuel will be reprocessed and recycled. In addition to the BN-600 reactor at Beloyarsk unit 3, which began operation in 1980, the 789 MWe BN-800 fast reactor at Beloyarsk unit 4 entered commercial operation in October 2016. This is essentially a demonstration unit for fuel and design features for the larger BN-1200, which will be unit 5 at Beloyarsk.

Details of the proposed construction timelines came during a visit to the site by Rosenergoatom CEO Alexander Shutikov (see picture above), where he heard that 1.4 million cubic metres of waste soil and vegetation have been cleared from the site.

Site preparation for drilling and blasting operations and site planning are scheduled to be ready this summer, reported Yuri Nosov, director of the power plant.

And Shutikov said: "Our primary focus now is completing the design documentation for submission to the Main Directorate of State Expertise of Russia, with the goal of receiving a conclusion on the design documentation for the main construction period by the end of 2026. The next step is to obtain a licence to construct the power unit in the spring of 2027."

He said the target for first concrete was by the end of 2027. When the preliminary phase for construction of the unit was launched in July last year by Rosatom Director General Alexei Likhachev, 2034 was reported as the target date for completion.

Rosatom says the service life of the BN-1200 power unit will be at least 60 years. Its design uses technical solutions that have proven themselves in the operation of the BN-600 and BN-800 reactors, but also features innovations. For example, the BN-1200 will have four instead of three loops for the circulation of liquid sodium, like its predecessors; the volume of the in-reactor storage facility will be increased to allow the unloading of fuel assemblies from the reactor directly into the used fuel pool, eliminating the intermediate drum for used assemblies; and the turbine condensers will be cooled using a chimney-type evaporative cooling tower.

In April last year Russia's nuclear regulator Rostechnadzor gave the go-ahead for the BN-1200 reactor. The licence was issued after the consideration of a package of documents covering the safety of the power unit and its compliance with technical regulations, federal rules and standards and legislation, Rosatom said.

It says that the fourth generation units "have the potential to radically transform the nuclear energy industry, primarily through a new level of safety, an expanded fuel mix, and a significant reduction in radioactive waste" and contributing to a closed nuclear fuel cycle.


Japan, Kazakhstan extend cooperation on fast reactors

The Japan Atomic Energy Agency and Kazakhstan's National Nuclear Centre have agreed to a new phase of their joint core safety experiments of fast reactors, which focus on severe accident mitigation measures for demonstration fast reactors.
 
The signing of the memorandum of cooperation in in Almaty, Kazakhstan, on 3 June (Image: NNC RK)

The Japan Atomic Energy Agency (JAEA) and the National Nuclear Centre of the Republic of Kazakhstan (NNC RK) have been advancing the phased EAGLE Projects on core safety experiments of fast reactors since the early 2000s and implemented three phases: EAGLE-1, EAGLE-2, and EAGLE-3. It is aimed at advancing the safety of sodium-cooled fast reactors, including the investigation of phenomena associated with severe accidents involving core melt. The project includes studies of molten core material behaviour and its interaction with sodium coolant and structural materials through both in-pile and out-of-pile experiments. In-pile tests are conducted at NNC RK's unique IGR research reactor, while out-of-pile studies are performed at the EAGLE test-bench.

About 200 preparatory tests have been carried out, along with two intermediate-scale and nine full-scale reactor experiments, as well as more than 65 out-of-pile tests at the EAGLE test-bench. The EAGLE-1, EAGLE-2, and EAGLE-3 experimental programmes have been successfully completed, confirming that molten fuel is promptly discharged from the core in the event of a severe accident. In addition, with the support of Marubeni Utility Service Ltd, analytical and computational studies were performed to prepare the next phase of the EAGLE programme (the Post-EAGLE-3 project).

NNC RK Director General Erlan Batyrbekov and JAEA President Masanori Koguchi have now signed a memorandum of cooperation to undertake a fourth-phase cooperative research project - EAGLE-4 - and to promote core safety experiments toward the implementation of fast reactors while further strengthening collaboration between both institutions.

The EAGLE-4 project includes several in-pile experiments, twelve out-of-pile experiments, and a series of small-scale tests. The main objectives of this new phase are to test fuel assemblies for advanced Japanese Generation IV reactors, conduct research at the IGR reactor and other NNC RK facilities, and provide the scientific basis for the safety assessment of advanced nuclear technologies.

JAEA said it will conclude in coming months an implementation arrangement that defines the detailed specifications of the core safety tests to be implemented under the EAGLE-4 project and will proceed with the cooperative research with NNC RK.

NNC RK said it is in discussions with JAEA on the continuation of the EAGLE-4 project through to 2031.

Fast neutron reactors offer the prospect of vastly more efficient use of uranium resources than in conventional power reactors, as well as the ability to burn actinides. Fast reactors have operated in various countries since the 1950s, with some producing electricity commercially.

JAEA has a history of operating sodium-cooled fast reactors, such as Monju in Fukui Prefecture and the Joyo experimental fast reactor in Ibaraki Prefecture. However, the development of fast reactors in Japan was halted when the government decided to decommission Monju in 2016, following a series of problems, including leakage of sodium coolant in 1995.

In the strategic roadmap for fast reactor development adopted by Japan's Cabinet in December 2018, a policy was defined to assess the efficacy of various types of fast reactors to be developed following a technological competition among private-sector corporations. The roadmap was subsequently revised by the Cabinet decision on 23 December 2022, at which time two decisions were taken: firstly, to select a sodium-cooled fast reactor as the target of the conceptual design of the demonstration reactor, set to get under way in fiscal 2024; and secondly, to select a manufacturer to serve as the core company in charge of the fast reactor's design and requisite R&D which would proceed with technology development in accordance with the goals and policy directions established by the government.

In collaboration with domestic companies, JAEA is conducting research and development towards the implementation of fast reactors, including the conceptual design of a demonstration fast reactor and the development of severe accident mitigation technologies. A demonstration fast reactor is planned to operate by 2050.

Tanzania's stalled $1bn uranium project Mkuju River gains momentum after talks with Russian partners

Tanzania's stalled $1bn uranium project Mkuju River gains momentum after talks with Russian partners
/ bne IntelliNewsFacebook
By Brian Kenety June 10, 2026

Tanzania’s long-delayed Mkuju River uranium project has gained renewed political and investment momentum following President Samia Suluhu Hassan’s visit to Russia, with officials signalling that implementation is moving closer to full-scale development.

The project, which has been stalled for more than a decade, is being developed in Tanzania's Ruvuma region by Mantra Tanzania Limited, a subsidiary of Uranium One Group, which is wholly owned by Russia's state nuclear corporation Rosatom.

Uranium One was formerly a publicly traded Canadian uranium company, but it was acquired by Rosatom through its subsidiary Atomredmetzoloto (ARMZ) and taken private in 2013. According to the company, Mkuju River is a “world-class uranium development project” with the Nyota deposit among the largest uranium projects globally with a resource reserve of 152 million tonnes of ore.

Last year, Hassan signed a deal with Rosatom to build a $400mn uranium processing plant as part of a $1.2bn, 20-year plan to extract and process 300,000 tonnes of Tanzania’s massive reserves.

The newly revived Mkuju River project was effectively put on hold after the 2011 Fukushima nuclear accident triggered a prolonged downturn in uranium prices, making many planned uranium developments commercially unviable.

Improving uranium market fundamentals and renewed global interest in nuclear power, including across Africa, have since revived investor interest in the project.

Speaking to The Citizen, Minister for Minerals Anthony Mavunde said talks held in Moscow reinforced commitments between Tanzanian and Russian stakeholders involved in the project, which is central to the East African country’s ambitions to become a significant uranium producer.

“The visit has added significant momentum to the project,” the minister said, adding that key preparatory stages were already complete and that implementation was expected to accelerate.

Mantra Tanzania has previously commissioned a pilot uranium-processing facility to test extraction technology and support the design of the main industrial plant. The company has also issued tenders for infrastructure works at the site.

"Rosatom offers its cutting-edge uranium processing technologies to develop the distinctive geological potential of Tanzania. As with all our partners, we intend to advance cooperation with the country on the basis of equality and mutual understanding," Alexey Likhachev, Director General of Rosatom, said in a statement in July 2025.

"In doing so, Rosatom consistently adheres to the principles of sustainable development while strictly upholding high environmental and social standards. We are delighted to assist Tanzania in taking a pivotal step toward integrating into the global nuclear energy landscape."

Financing discussions are ongoing with Russian and Tanzanian lenders as developers seek capital for construction. Questions remain over long-term funding as the project’s special mining licence approaches expiry in 2028. Officials say renewal is possible under existing legal provisions.

As IntelliNews reported, Tanzania and Russia in June also agreed to expand cooperation in geological research, technical training and mining capacity building, building on long-standing Soviet-era ties.

Tanzania’s renewed focus on uranium comes amid a global shift towards low-emission energy sources, with the International Atomic Energy Agency recognising the country’s development potential and the World Nuclear Association listing it among countries with viable uranium resources.

According to project feasibility studies, Mkuju River could produce more than 4,000 tonnes of uranium annually, potentially positioning Tanzania as one of Africa’s leading producers.

Africa is an important source of uranium for the global nuclear industry, with mines in Namibia, Niger and South Africa accounting for about 14% of world uranium production, according to the World Nuclear Association.

Namibia remains the continent's largest producer, producing 8,000 tonnes annually, and the world's third-largest uranium supplier after Kazakhstan and Canada.

New uranium projects advance across the continent

Meanwhile, Aura Energy (ASX: AEE, AIM: AURA) is targeting a final investment decision (FID) for its Tiris uranium project in Mauritania by the end of 2026 after signing a memorandum of understanding (MOU) with a “major international nuclear utility” and advancing multiple funding options.

The Australian miner said in an update on June 2 that the non-binding MOU covers potential investment, uranium offtake and technical collaboration linked to the Tiris project, which would become Mauritania’s first uranium mine and the country’s first new mine in two decades.

Canada-based uranium developer Global Atomic Corporation (TSX: GLO, OTCQX: GLATF, FRANKFURT: G12) said last month it had secured renewed political backing from Niger’s military-led government for the Dasa uranium project, as the West African state seeks to strengthen mining investment and expand trade links following its post-coup diplomatic realignment.

Global Atomic said on May 26 that members of its executive team, led by chief executive Stephen Roman, met Niger President General Abdourahamane Tiani, Prime Minister Ali Lamine Zeine and Mines Minister Ousmane Abarchi during a visit to Niamey and the Dasa project site.

Niger's uranium mining sector had historically been dominated by French nuclear fuel company Orano S.A. (EPA: ORA), formerly Areva. But the country has continued to reposition its mining and foreign investment relationships since a July 2023 military coup, which triggered tensions with Western governments and regional bloc ECOWAS.

In December 2025, a Memorandum of Cooperation was signed between the Nigerien state company Timersoi National Uranium Company (TNUC) and Uranium One, intended to develop Russian cooperation in uranium mining. Under this partnership, the parties plan to obtain the necessary permits, conduct geological exploration of prospective deposits, and ultimately establish new uranium mining operations at those sites.

Issoufou Tsalhatou, Secretary General of TNUC, stated: "Niger has large-scale plans for developing its uranium mineral resource base and is interested in attracting Russian partners who have reference experience and competencies in managing mining projects based on safety principles. This approach establishes a solid foundation for the successful implementation of projects to develop the country's strategic resources."

Nuclear expansion underpins uranium demand outlook

Growing investment in nuclear power is helping to support uranium markets globally. While South Africa remains Africa's only nuclear power producer through the Koeberg plant, countries including Egypt, Ghana, Kenya, Nigeria and Rwanda are examining nuclear generation as part of their long-term energy strategies.

Egypt's El Dabaa nuclear project, being built by Russia's Rosatom, is expected to become Africa's second operational nuclear power programme and reflects broader interest in nuclear energy as a low-carbon source of baseload electricity. This trend has contributed to stronger long-term demand expectations for uranium and renewed interest in new mining projects such as Mkuju River.

The renewed investment push comes as utilities in Europe, Asia and North America seek to secure future uranium supply outside traditional markets following geopolitical disruptions and tightening global inventories. Uranium prices have strengthened sharply since 2021, supporting new project development across Africa’s mining sector.

Spot uranium prices climbed from below $30 per pound in 2020 to above $100/lb in early 2024 — the highest levels in more than 15 years — before easing back into the $70–80/lb range during 2025 and 2026. The rally has been driven by growing reactor demand, supply disruptions in major producing countries such as Niger and Kazakhstan, and increased long-term contracting activity by utilities seeking to secure future fuel supply.

Singapore’s nuclear question

Singapore’s nuclear question
/ Nicolas HIPPERT- UnsplashFacebook
By IntelliNews June 11, 2026

Surviving in a resource-scarce island city-state demands pragmatic realism. For Singapore, energy security on the densely populated island city-state has always been an issue.

And as revealed in a recent report by The Straits Times, Singapore has been looking long and hard into energy sources the island can still explore.

In a regulatory and technical milestone revealed in the same report, a recent study conducted by Singaporean authorities in collaboration with Swedish nuclear pioneer SKB International, has concluded that no major technical showstoppers would prevent the republic from safely storing high-level radioactive waste deep down and within its borders.

This research was originally commissioned back in 2023 by the Energy Market Authority (EMA) and the National Environment Agency (NEA), and the findings point to a calculated step forward. The data in the report backs a policy shift with the Singaporean government confirming that it will undergo a comprehensive country assessment by the United Nations' nuclear watchdog, the International Atomic Energy Agency (IAEA), in 2027. This assessment will have 19 critical operational parameters that will officially determine the nation’s capability to safely deploy nuclear reactors by as early as 2040.

The Olympic pool

For decades, the primary psychological and logistical barrier to nuclear adoption in Singapore has been a simple question of geometry: where do you put the waste on such a small island. The SKB International study directly addresses this question by breaking down the actual physical footprint of nuclear byproducts into a stark, highly humanised baseline comparison.

A standard 1-gigawatt (1GW) conventional large-scale reactor capable of powering roughly 700,000 homes produces approximately 370,000 litres of nuclear waste per year. To the average citizen, that volume sounds staggering. In reality, it fills just one-seventh (14.2%) of a single Olympic-sized swimming pool.

When placed in the context of a national landfill, the space constraints dissolve further. Singapore’s active Semakau Landfill has a volumetric capacity exceeding that of 11,000 Olympic-sized swimming pools. Only 5% of that annual nuclear byproduct is classified as high-level waste, such as spent uranium fuel rods containing plutonium-239, which carries a 240,000-year radiation decay timeline.

And given that the study verified that these compact waste isolation frameworks are fully compatible with Small Modular Reactors (SMRs), the advanced, lower-capacity systems (up to 300MW) that Singapore is actively monitoring for urban deployment, by translating complex nuclear physics into manageable spatial dimensions, the report shifts the domestic debate from a structural impossibility to a question of strict technical execution.

Granite shield

The geological foundation of Singapore’s nuclear ambitions lies right underneath its urban sprawl. Mark Lim, Chairman of the IEEE Nuclear and Plasma Sciences Society’s Singapore chapter, confirmed via The Straits Times that the city-state is uniquely positioned due to its well-characterised, remarkably stable bedrock. The central core of the island is anchored by the Bukit Timah granite formation, which stretches from Woodlands and Sembawang down through Bukit Batok, complemented by massive granite reserves on Pulau Ubin.

This specific granite is an exceptional natural vault. It is hard, dense, and highly impermeable, qualities that naturally block groundwater, and prevent any potential radionuclide migration. However, the EMA has urged strict caution. Because the SKB study was an initial desktop review, the state must now transition to intensive, physical on-site field surveys. Future exploratory drilling must prove that target granite sectors are completely unfractured and free of minor fault lines. In deep borehole storage, even a microscopic fracture path could allow groundwater to interact with containment canisters, making field verification the ultimate technical hurdle.

Navigating the psychology of density

Yet while the engineering parameters might look promising, nuclear energy specialists stress that the steepest challenge facing the Cabinet is not geological, but social. Matthew Chew, nuclear competency and strategy lead at engineering consultancy HY, pointed out in The Straits Times that Finland’s Onkalo repository, the world’s first operational deep granite tomb, set to go live later this year, took four decades of continuous public engagement, site selection disputes, and legislative ratifications to materialise. Finland succeeded because it built deep institutional trust with its population over generations.

Given Singapore’s extreme population density, introducing radioactive storage sites will require an unprecedented, highly transparent public education campaign. To mitigate localised anxieties and "Not In My Backyard" (NIMBY) types, early infrastructure designs suggest that any future disposal facility would likely be placed completely away from high-density residential zones. Instead, the repositories would be carved deep beneath less-developed state land sectors or hidden under a smaller but dedicated offshore island.

This careful management of information, holding onto the 2023 SKB findings until aligning them with the upcoming 2027 IAEA milestone, demonstrates the Singaporean government's signature risk-mitigation strategy. As the nation prepares to come under IEA scrutiny next year, the administration isn't just preparing a technical defence of its granite; it is beginning the delicate process of proving to global inspectors and its own citizens that a modern, high-tech city-state can safely master the atom.

China’s Nuclear Power Capacity Has Nearly Doubled Since 2016 – Analysis


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From 2016 to 2024, China’s nuclear generation capacity increased 76% (24 GW), based on our International Energy Statistics (IES) data. According to the International Atomic Energy Agency’s Power Reactor Information System (PRIS), China added an additional 1.1 GW of nuclear power capacity in 2025 and 2.2 GW in 2026 (through May). China is continuing to build out its nuclear generating capacity and has 36 reactors under construction, accounting for more than 49% of total world nuclear construction, according to PRIS. 

China’s nuclear fleet is concentrated near population centers in the eastern part of the country, along the Pacific Ocean coastline from the Liaoning province in the north to the Hainan province in the south. According to IAEA’s PRIS, China’s existing nuclear fleet mostly consists of pressurized water reactors

Operational nuclear power plant capacity in China, as of May 2026
Data source: U.S. Energy Information Administration, World Bank, Global Energy Monitor, Global Nuclear Power Tracker, and International Atomic Energy Agency Note:  MW=megawatts

As of May 2026, China had 60 operational reactors with 58.7 GW of total capacity installed at 18 different sites. China has also implemented strategies to help rapidly expand its nuclear power plant fleet. 

Nuclear projects in China use a standardized project management approach for design, licensing, and construction for multiple reactor technologies. Reactors are built in batches of 6 to 10 reactors to take advantage of economies of scale. China is also building up a nuclear supply chain with a focus on domestic manufacturing of the main plant components to decrease reliance on foreign nuclear vendors. 

Additionally, China’s average build time for nuclear power plants is below the global average. According to the World Nuclear Industry Status Report, 2022 the average build time for a nuclear power plant in China between 2012 and 2021 was six years, compared with a global average construction time of about nine years. More recent reporting in 2024 similarly indicates that Chinese firms built reactors both inside and outside of China in five to seven years. 

China started construction of six new reactors in 2025 and two new reactors, Xuwei-1 and Taipingling-4 in 2026 through May. China has also commissioned two new units so far in 2026: Sanao-1 and Taipingling-1. In total, China has 36 reactors under construction across 19 sites which will add about 38.9 GW of additional capacity

Nuclear power plants under construction in China, as of May 2026
Data source: U.S. Energy Information administration, World Bank, Global Energy Monitor, Global Nuclear Power Tracker, and International Atomic Energy Agency  Note:  MW=megawatts

China is building its first small modular reactor (SMR), the Linglong-1, a domestically designed 100 MWe pressurized water reactor that can be used for power generation, water desalination, and district heating. The project is intended to demonstrate commercial operation and is expected to start operation in the first half of 2026. The Linglong-1 uses the ACP100 SMR design, a modular design, allowing certain components to be built in a factory and installed onsite. 

  • Principal contributors: Slade Johnson, Jonathan Russo
  • Source: This article was published by EIA

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