The University of Birmingham and EPRI have collaborated to advance fusion energy technologies through the FURESHMA programme. The £2.63 million project aims to test advanced shielding materials capable of protecting critical components from extreme fusion conditions.
The PACMAN AI framework successfully tested in five real-world experiments, making decisions in milliseconds and surpassing human reaction time. The framework combines multiple machine learning models to monitor and control different aspects of the fusion system, enabling real-time control and safety.
The partnership aims to advance additive manufacturing for critical energy challenges, including nuclear energy and broader energy infrastructure. SRNL and 3D Systems will jointly pursue advancements in materials development, equipment enhancements, and workforce development training.
The DOE has committed funding for UNITY-3, a cutting-edge breeding blanket test facility at ORNL, with Kyoto Fusioneering relocating its US headquarters to Tennessee. This partnership establishes a shared commercial-scale testing infrastructure to validate critical systems and train digital twins of breeding blanket concepts.
A new study by MIT researchers aims to give the budding industry a framework for understanding how fusion can be profitable. The method considers the physical inputs needed to sustain controlled fusion energy production and the cost of building power plants that can compete in energy markets.
Cryogenic pellet fueling forms solid pellets of hydrogen at extremely low temperatures, enhancing plasma performance and addressing fueling challenges in next-generation fusion devices. The partnership between ORNL and Type One Energy will accelerate commercialization of fusion energy.
Scientists at HZDR develop method to separate hydrogen isotopes, including tritium, using porous material. The technique utilizes quantum mechanical effect in silver sites, resulting in highly efficient separation with low losses.
Karlsruher Institut für Technologie (KIT) has been selected as a research hub for fusion technology, focusing on the development of the fuel cycle and new materials. The institution will pool its expertise with industry partners to master technological challenges associated with fusion energy.
Scientists at Colorado State University have successfully created an ultracold neutral plasma, cooling electrons to near absolute zero. This breakthrough will aid in the development of better computer models for fusion energy systems and help understand white dwarf stars and extreme environments in the universe.
The partnership will create a blueprint for fusion testbed and shared technology development, addressing key gaps in the DOE Fusion Science and Technology Roadmap. The collaboration combines ORNL's expertise in fusion science with REV's technical knowledge and specialty in capital and ecosystem development.
The PPPL-led project will use AI to autonomously operate high-power gyrotrons, a crucial method for heating plasma in fusion systems. Researchers from multiple institutions will collaborate on this project.
Two Lehigh University AI projects have been selected for funding from the Department of Energy's Genesis Mission. The RIVER-AI project will improve flood- and water-level prediction, while the REACT project aims to accelerate reactor-scale fusion energy by developing an AI-enabled digital twin. These awards strengthen Lehigh University...
Andrei Khodak, a principal engineering analyst at PPPL, has been awarded the ANS Outstanding Achievement Award for his work on virtual prototyping of liquid-metal plasma-facing components. He has made significant contributions to the design and engineering of major fusion systems, including ITER and DIII-D.
The National Spherical Torus Experiment-Upgrade (NSTX-U) will enable plasma operations by creating two separate sets of magnetic fields, confining the plasma and heating it through an electric current. This compact fusion system has unique research capabilities, making it easier to build and replicate than conventional tokamaks.
The papers validate and de-risk Commonwealth Fusion Systems' approach to commercial fusion, demonstrating scientifically robust path to grid electricity in the early 2030s. Advanced computational tools combined decades of empirical research on tokamaks worldwide, predicting 1.1 GW of fusion power and 400 MW of continuous net electricity.
Dr. Yannik Zobus's LASE-FUSE project aims to develop a comprehensive, modular simulation framework for fusion laser systems, enabling holistic modeling and virtual optimization of complex systems. The project will receive three million euros in funding over five years through the 'Fusionstalente' program.
High-powered lasers can vaporize a solid target, creating plasma that rapidly expands and generates strong magnetic fields. The team derived a simple threshold criterion to predict plasma magnetization for given laser and target parameters.
A new 10-year project agreement advances US-EU collaboration on Wendelstein 7-X stellarator, a key experiment in fusion energy. The framework streamlines processes for joint research projects and provides a consistent legal structure for partnerships.
A new international project will provide essential measurement equipment for two doughnut-shaped fusion devices, WEST and JT-60SA, to understand plasma behavior. PPPL's Luis Delgado-Aparicio leads the effort, adding powerful X-ray imaging systems to guide future fusion system design.
The Princeton Plasma Physics Laboratory successfully completed its marathon run on the Large Helical Device, yielding key findings about fusion energy. The experiment produced world-record milestones, including sustained megawatt-level plasmas for nearly an hour, and demonstrated a unique feature to produce resilient plasmas.
Researchers achieved a transition temperature of 151 Kelvin, setting the stage for future advancements in superconductivity. The breakthrough could lead to more efficient ways to generate, transmit, and store energy, conserving billions of dollars in savings and reducing environmental impacts.
A new report recommends increased investment in America's fusion diagnostic capabilities, a critical technology that could provide information to speed up the delivery of commercial fusion power plants. The report identifies key areas for research and development to advance U.S. leadership in fusion energy and plasma technologies.
Researchers have developed a new method for qualifying materials for use in advanced nuclear reactors, which uses ion beams to mimic radiation damage. This approach can be done at a fraction of the cost and time required by traditional test reactors.
The US Department of Energy has launched a national research program on liquid metals for fusion, with Princeton University at the forefront. The program aims to develop liquid metal technology that can protect components from intense heat and improve fusion system performance.
Researchers used computer simulations to study the behavior of exhaust particles in tokamaks. They found that the toroidal rotation of plasma plays a key role in determining where particles land in the machine's exhaust system. This discovery could help engineers design divertors better equipped to handle intense heat.
ORNL and Kyoto Fusioneering have established a public-private partnership to develop cutting-edge experimental infrastructure for testing next-generation tritium breeding blanket systems. The UNITY-3 facility will be sited at ORNL and complement existing facilities in Japan and Canada, advancing mutual research and commercial goals.
The new platform, led by PPPL, aims to speed up simulations needed to advance fusion energy research. STELLAR-AI will integrate CPUs, GPUs, and QPUs to tackle the challenges of private fusion companies, enabling faster design and optimization of stellarator devices.
The Oak Ridge National Laboratory is partnering with Type One Energy and the University of Tennessee to establish a world-class high-heat flux facility in East Tennessee. The facility will evaluate how materials react under extreme conditions in a fusion device, accelerating the development of plasma-facing components and enabling the ...
Zap Energy's FuZE-3 device has reached electron pressures of up to 830 MPa, or 1.6 GPa total, in a sheared-flow-stabilized Z pinch, a major milestone on the path to scientific energy gain. The device achieves this high pressure through independent control of plasma acceleration and compression.
The Princeton Plasma Physics Laboratory has partnered with Japan and Europe on the world's largest fusion machine, JT-60SA. The U.S. lab will provide an advanced measurement tool, XICS, to help scientists better understand and control the plasma inside the machine.
Scientists at MIT developed a method to predict how plasma in a tokamak will behave during rampdown, achieving high accuracy with limited data. This new model could significantly improve the safety and reliability of future fusion power plants.
Hundreds of physicists from around the world will convene to present new research at the 67th annual meeting of the American Physical Society’s Division of Plasma Physics. The conference features presentations on fusion energy, plasma turbulence, laser plasma acceleration, and more.
A new AI system called Diag2Diag analyzes sensor data to provide synthetic information for failing or degraded sensors in fusion systems, enhancing robustness and reducing complexity. This technology has the potential to make fusion energy more economical and reliable, enabling 24/7 operation without interruption.
A groundbreaking review article reveals that solar-driven water electrolysis can be used to produce high-value chemicals sustainably, transforming the industry from cost-losing to economically compelling. The paper argues that introducing high-value syntheses into solar electrolysis systems could revolutionize the field.
MIT engineers have developed a novel palladium membrane that remains stable at high temperatures, enabling more energy-efficient and cheaper production of hydrogen fuel. The new design allows for the separation of hydrogen from gas mixtures at much higher temperatures than conventional membranes.
Century's sustained average power has increased 20x to 39 kilowatts, a major step toward commercial fusion power plants using repetitive pulsed power and liquid metal energy transfer. The platform achieves record-breaking operations with 100 plasma shots at 0.2 Hz.
The SNU–APCTP joint research team experimentally demonstrated multiscale coupling in plasma, a phenomenon that explains how microscopic instabilities drive macroscopic structural changes. Their findings have significant implications for fusion energy development and astrophysical plasma study.
The ORNL-led FIRE Collaboratives will focus on closing critical gaps in fusion materials, blanket and coolant technology, liquid metal components, and reactor modeling. The project aims to develop a new paradigm for fusion plasma-facing materials and accelerate the deployment of next-generation PFCs.
The Department of Energy's Oak Ridge National Laboratory has been awarded $6.1 million to lead three research collaborations tackling fusion energy challenges. The projects focus on advanced materials, plasma diagnostics, and simulation technologies to accelerate the development of fusion energy.
Researchers at the University of British Columbia have demonstrated that electrochemically loading a solid metal target with deuterium fuel can increase fusion reaction rates by an average of 15%. The approach uses a room-temperature reactor and achieves this boost without generating heat, paving the way for clean energy generation.
Researchers are developing a new system to use nuclear waste to produce valuable tritium, which could power over 500,000 homes for six months. The system uses a particle accelerator to jump-start atom-splitting reactions in the waste, producing more tritium than traditional fusion reactors.
Researchers have developed a new AI approach called HEAT-ML that accelerates calculations of magnetic shadows in fusion vessels, enabling faster design and operation. This breakthrough could lead to significant improvements in fusion power generation and potentially limitless clean energy.
A global collaboration found that co-deposition is the dominant driver of fuel retention in lithium walls, and adding lithium during operation is more effective than pre-coating. The study offers insights into managing tritium, a rare fusion fuel, and improving plasma stability.
PPPL's Jack Berkery is heading to Japan as a Fulbright Specialist to share research on spherical tokamaks and strengthen ties with Kyushu University. He will present PPPL research at the Asia-Pacific Conference on Plasma Physics, focusing on spherical tokamaks and their preparations for NSTX-U's next phase of operations.
Dr. Jonas Ohland will lead the ALADIN project to develop stable, efficient lasers for inertial confinement fusion. The goal is to improve beam guidance and reduce manual intervention, benefiting not only fusion research but also other high-power laser applications.
A new simulation approach has been developed to model plasmas used in computer chip manufacturing, allowing for improved stability and efficiency. The new code accurately conserves energy, helping to ensure the results reflect real physical processes.
A University of Texas-led team has discovered a shortcut to design leak-proof magnetic confinement systems in stellarator reactors, addressing a 70-year-old challenge. This breakthrough enables engineers to simulate the system more efficiently without sacrificing accuracy, paving the way for the development of reliable fusion energy.
ITER has completed its pulsed superconducting electromagnet system, the largest and most powerful in the world, with significant contributions from USA, Russia, Europe, and China. The system is expected to produce a tenfold energy gain and demonstrate the viability of fusion as an abundant, safe, carbon-free energy source.
Researchers developed an advanced microscopic method to map residual stress in ultra-narrow weld zones, revealing the impact on P91 steel's strength and brittleness. The findings provide critical insights for designing safer and longer-lasting fusion energy systems.
Researchers at Johns Hopkins Medicine have discovered how a group of proteins linked to Parkinson's and ALS act as 'guardians' of mitochondria, maintaining their normal size and function. The study found that when mitochondria become too large, they leak mitochondrial DNA into the cytosol, triggering an inflammatory response.
Five Oak Ridge National Laboratory scientists have been elected AAAS Fellows for their groundbreaking work in experimental condensed matter physics, microbial ecology, catalysis, and energy applications. Ho Nyung Lee was recognized for his research on oxide quantum materials, while David Graham's contributions to microbial biochemistry...
A new physics basis for a practical fusion pilot power plant has been developed by Type One Energy, setting the stage for commercial fusion power plants. The design builds on stellarator fusion technology, which has shown success in research settings, and addresses scaling up to a pilot plant.
Distributed acoustic sensing systems face data processing speed limitations; researchers leverage photonic neural networks to overcome these challenges. The TWM-PNNA system achieves high recognition accuracy above 90% with low power consumption, outperforming electrical GPUs by orders of magnitude.
Experts discuss scientific and technological challenges in the energy transition, including solar technologies, hydrogen, batteries, grid management, and future energy sources. The joint paper recommends innovations leading to next-gen photovoltaic technology, green hydrogen production, and AI-powered grid management.
SLAC is part of a collaborative team led by General Atomics to develop fusion fuel targets and overcome critical technological challenges. The lab will receive $1 million per year to develop advanced target tracking technology, helping bridge basic research with the growing fusion industry.
Researchers at Texas A&M University have developed a new catalytic graphitization technology to convert petroleum coke into graphite, reducing emissions and cost associated with conventional synthetic graphite production. The process uses lower temperatures and shorter times, making it more sustainable and efficient.
A new Zap research paper validates the company's sheared-flow-stabilized Z-pinch fusion approach by measuring nearly isotropic neutron energies, indicating stable thermal plasma. This achievement provides a benchmark milestone for scaling fusion to higher energy yields and confidence in reaching higher performance on the FuZE-Q device.
The SMART device has successfully generated its first tokamak plasma, bringing international fusion community closer to achieving sustainable and clean energy. The achievement represents a major step towards the development of compact fusion power plants based on Spherical Tokamaks.
A simulation study clarifies the physical mechanism of coupled plasma fluctuations, which can lead to significant losses of energetic particles in fusion research. The study reveals that the two fluctuations occur in a coupled manner via deformation of the energetic particle distribution function.
The US Department of Energy awards $107 million to six projects in the Fusion Innovative Research Engine (FIRE) Collaboratives, supporting commercial fusion energy development. Several privately funded fusion companies complete early critical-path science and technology milestones in the Milestone-Based Fusion Development Program.