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An alloy containing 92.6 at.% Pd is characterized by the highest hydrogen absorption capacity with H/M ratio exceeding 0.80.
The highest hydrogen absorption kinetic was obtained during the first 5 h of absorption time, where 95%% of the maximum absorption capacity was reached.
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High hydrogen absorption, large decrepitation and low cost make these hydrides better catalysts for large-scale production of CNTs.
Melt-spun ribbons exhibit higher hydrogen absorption rate and smaller hydrogen storage capacities than the annealed alloys in the initial cycle.
The biomass with largest hydrogen content is found to produce syngas with higher hydrogen concentration.
The main disadvantages of MgH2, as a hydrogen storage medium, are its high hydrogen desorption temperature, slow kinetics of hydrogen absorption, and high tendency to react with oxygen [6].
The onset of plastic deformation, marked by a high pressure hysteresis between hydrogen absorption and desorption isotherms, limits the extent of hydride destabilization that can be achieved by elastic strain engineering.
This indicates that hydrogen interaction in these systems is enhanced even at cryogenic temperatures, while the high T needed for hydrogen absorption is only required to overcome the H2 dissociation barrier mediated by alkali metals.
The NMR shift of absorption peak increased to higher magnetic fields as the hydrogen absorption proceeded.
In this work, a novel nanogap with inclined protrusion cathode in palladium strip fabricated by hydrogen absorption under high-pressure treatment is optimized for the surface conduction electron-emitter.
It has been found that for the temperature range studied the maximum hydrogen absorption capacity is the highest in 283 K and decreases with temperature increase.
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