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DOE to award $60M to advance clean hydrogen technologies and decarbonize grid

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To further decarbonize the grid, DOE is also launching a $20-million university research consortium to help states and Tribal communities successfully implement grid resilience programs and achieve decarbonization goals. ( DE-FOA-0002792 ). Development and Validation of Sensor Technology for Monitoring and Measuring Hydrogen Losses.

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DOE to award nearly $42M to 22 projects to advance clean hydrogen technologies

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million to establish a new North American university research consortium that will help states and tribal communities implement grid resilience programs and achieve decarbonization goals. They will support DOE’s H2@Scale initiative, which aims to augment the affordable production, transport, storage, and utilization of clean hydrogen.

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Researchers demonstrate new nickel selenide catalyst for more efficient water splitting

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A team of researchers from Missouri University of Science and Technology and National and Kapodistrian University of Athens in Greece have developed a highly efficient transition metal selenide-based coordination complex, [Ni{(SePiPr 2 ) 2 N} 2 ] for oxygen evolution and hydrogen evolution reactions (OER and HER, respectively) in alkaline solution.

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Duke researchers boost electrolyzer productivity with microfibrous flow-through electrode; 12.5- to 50-times greater than conventional

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Ben Wiley, a professor of chemistry at Duke University and his team are investigating how nano- and microstructured porous electrodes can improve the productivity of hydrogen generation in a zero-gap, flow-through alkaline water electrolyzer. Wiley Lab, Duke University). Inset: Electron microscope view of the felt.

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Duke team develops new core-shell copper nanowire catalyst for efficient water oxidation for solar fuels

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A transparent film of copper nanowires was transformed into an electrocatalyst for water oxidation by electrodeposition of Ni or Co onto the surface of the nanowires. Water oxidation (2H 2 O → O 2 + 4 e- + 4H + ) is a key step for converting solar energy into chemical fuels. Chen et al. Click to enlarge. A team led by Benjamin J.

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Study shows a much cheaper catalyst can generate hydrogen in a commercial electrolyzer

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Researchers at the Department of Energy’s SLAC National Accelerator Laboratory and Stanford University have shown for the first time that a low-cost, non-precious metal cobalt phosphide (CoP) catalyst catalyst can split water and generate hydrogen gas for hours on end in the harsh environment of a commercial device.

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ARPA-E awarding $36M to 22 projects in RANGE program for transformative EV storage

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ARPA-E’s new program, Robust Affordable Next Generation Energy Storage Systems (RANGE) ( earlier post ), aims to accelerate widespread EV adoption by dramatically improving driving range and reliability, and by providing low-cost, low-carbon alternatives to today’s vehicles. University of Houston. Princeton University.