4.7 Article

Improving desorption temperature and kinetic properties in MgH2 by vacancy defects: DFT study

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 45, Issue 18, Pages 10806-10813

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2020.02.024

Keywords

Ab initio calculations; Hydrogen storage; Magnesium hydride; Vacancy defects; Formation energy; Desorption temperature

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The aim of this work is the improvement of the desorption temperature and kinetic properties in MgH2 by magnesium vacancy defects V-Mg. We use the Korringa - Kohn - Rostoker (KKR) calculation combined with the coherent potential approximation (CPA) in this work. In particular, we find that the formation energy increases with the increasing VMg concentration and, vice versa, for the desorption temperature in MgH2. We also find that the magnesium vacancy defects have an effect on the gravimetric hydrogen capacity by making the magnesium hydride more lightweight. Moreover, the densities of states (DOS) indicate that the stability of MgH2 decreases with the increasing V-Mg concentration by shifting the Mg and H states to the conduction band (CB). In particular, we observe that it is difficult, after similar to 4.8%, to storage the hydrogen into the system without cooling, because the desorption temperature becomes less than 0 degrees C. We also find that the optimal V-Mg concentration for the hydrogen vehicles is about 3.7% because its desorption temperature is close to the operating temperature of most modern vehicle engines. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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