期刊
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 46, 期 67, 页码 33468-33485出版社
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.07.155
关键词
Graphene; Mg-based hydrogen storage alloy; Internal mechanism; Hydrogen storage performance
资金
- Joint Fund of Inner Mongolia Natural Science Foundation [2020MS05073, 2019BS05005]
- National Natural Science FoundationofChina [51901105, 51871125, 51761032]
Mg-based hydrogen storage alloys are attracting attention due to their high storage capacity and reversibility, but their stability and kinetics limit their practical application. Graphene as a catalyst has been studied extensively, showing potential to enhance the performance of Mg-based hydrogen storage alloys.
Mg-based hydrogen storage alloys have become a research hotspot in recent years owing to their high hydrogen storage capacity, good reversibility of hydrogen absorption/desorption, low cost, and abundant resources. However, its high thermodynamic stability and slow kinetics limit its application, so the modification of Mg-based hydrogen storage alloys has become the development direction of Mg-based alloys. Transition metals can be used as catalysts for the dehydrogenation of hydrogen storage alloys due to their excellent structural, electrical, and magnetic properties. Graphene, because of its unique sp(2) hybrid structure, excellent chemical stability, and a specific surface area of up to 2600 m(2)/g, can be used as a support for transition metal catalysts. In this paper, the internal mechanism of graphene as a catalyst for the catalysis of Mg-based hydrogen storage alloys was analyzed, and the hydrogen storage properties of graphene-catalyzed Mg-based hydrogen storage alloys were reviewed. The effects of graphene-supported different catalysts (transition metal, transition metal oxides, and transition metal compounds) on the hydrogen storage properties of Mg-based hydrogen storage alloys were also reviewed. The results showed that graphene played the roles of catalysis, co-catalysis, and inhibition of grain aggregation and growth in Mg-based hydrogen storage materials. (C) 2021 Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.
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