Journal
MATERIALS RESEARCH BULLETIN
Volume 140, Issue -, Pages -Publisher
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.materresbull.2021.111304
Keywords
Hydrogen charging kinetics; Mg-10 wt% Fe2O3; Rate-determining steps; Dissociative chemisorption; Hydrogen diffusion
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The hydrogen charging of Mg-10Fe(2)O(3) involves dissociative chemisorption of hydrogen molecules on particle surfaces, diffusion of hydrogen atoms through a thickening Mg hydride layer, and chemical reaction of Mg with hydrogen at the interface. The rate-determining step is the dissociative chemisorption of hydrogen molecules on the surfaces of Mg and/or Fe in the initial hydrogen charging stage, while diffusion of hydrogen atoms through the thickening Mg hydride layer determines the hydrogen charging rate in the later stage.
The rate-determining steps in the hydrogen charging of Mg-10Fe(2)O(3), prepared by mechanical milling in hydrogen (MgH2-forming mechanical milling), were analyzed by comparing dependences of hydrogen charging rate on hydrogen pressure and temperature with those of previously established theoretical rate equations. Hydrogen charging of the activated Mg-10Fe(2)O(3) can be classified into dissociative chemisorption of hydrogen molecules on particle surfaces, diffusion of hydrogen atoms through a thickening Mg hydride layer, and chemical reaction of Mg with hydrogen at the interface. The dependences of the initial hydrogen charging rates on hydrogen pressure (linear) and temperature (Arrhenius equation / T-1/2) showed that the rate-determining step of the hydrogen charging of Mg-10Fe(2)O(3) was the dissociative chemisorption of hydrogen molecules on the surfaces of Mg and/or Fe in the initial hydrogen charging stage. In the later stage, the diffusion of hydrogen atoms through the thickening Mg hydride layer determined the hydrogen charging rate of Mg-10Fe(2)O(3).
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