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Ariel researchers develop new type of hydrogen generator with sodium borohydride for on-demand use

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Researchers at Ariel University in Israel have developed a new type of hydrogen generator for “on-demand” use with fuel cells. Hydrogen is produced in a catalytic hydrolysis reaction of sodium borohydride (NaBH 4 ) with ruthenium powder as a catalyst. Zakhvatkin et al. —Zakhvatkin et al. 1c00367.

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SiGNa Chemistry Demonstrates Sodium Silicate-Based Hydrogen Generation System for Portable Fuel Cells

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Prototype sodium silicate hydrogen generation system as presented earlier this year at DOE merit review. a developer of stabilized reactive metals for safer, more efficient industrial chemistry, announced the successful design, assembly, and initial testing of its H300 Hydrogen Generation System. Click to enlarge.

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Researchers devise seawater-resilient bipolar membrane electrolyzer for turning seawater into hydrogen

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Researchers at the Department of Energy’s SLAC National Accelerator Laboratory and Stanford University with collaborators at the University of Oregon and Manchester Metropolitan University have developed a seawater-resilient bipolar membrane electrolyzer.

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UNSW team demonstrates high reversible hydrogen storage capacity under mild conditions for sodium borohydride using novel core-shell nanostructure; potential for vehicles

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The core-shell NaBH 4 @Ni nanoparticles show high reversible hydrogen storage under reasonable conditions. The results could create an opportunity for the use of borohydride materials for hydrogen storage in vehicles. mass %), sodium borohydride is a promising hydrogen storage material. Click to enlarge.

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Researchers use sodium to deliver low-cost MgSi alloys for solid-state hydrogen storage

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Researchers at the University of Queensland have show that a low-cost Mg-based hydrogen storage alloy is possible with only 1 wt% Si. A high hydrogen capacity of 6.72 wt% hydrogen is achieved via trace sodium (Na) addition. Si alloys for hydrogen storage applications. at 350 °C under 2 MPa, compared to 0.31

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Process for Hydrogen Production from Sodium Sulfite Solutions Resulting from Capture of SO2 from Coal Flue Gas

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A typical example is the use of a dilute aqueous sodium hydroxide (NaOH) solution to absorb SO 2 from flue gas, forming an aqueous Na 2 SO 3 solution. Alternatively, oxidation of an aqueous Na 2 SO 3 solution can be carried out for the production of high purity clean hydrogen fuel. Huang et al. Huang et al. Huang et al.

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UH team reports new catalyst efficiently produces hydrogen from seawater; promising for large-scale hydrogen production, desalination

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Researchers from the University of Houston have reported a significant breakthrough with a new oxygen evolution reaction catalyst that, combined with a hydrogen evolution reaction catalyst, achieved current densities capable of supporting industrial demands while requiring relatively low voltage to start seawater electrolysis.

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