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Chin. Phys. B, 2019, Vol. 28(9): 098801    DOI: 10.1088/1674-1056/ab33f0
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An overview of progress in Mg-based hydrogen storage films

Lyu Jinzhe, Andrey M Lider, Viktor N Kudiiarov
Division for Experimental Physics, School of Nuclear Science & Engineering, National Research Tomsk Polytechnic University, Lenina Ave. 43, Tomsk 634034, Russia
Abstract  

Mg-based hydrogen storage materials are considered to be one of the most promising solid-state hydrogen storage materials due to their large hydrogen storage capacity and low cost. However, slow hydrogen absorption/desorption rate and excessive hydrogen absorption/desorption temperature limit the application of Mg-based hydrogen storage materials. The present paper reviews the advances in the research of Mg-based hydrogen storage film in recent years, including the advantage of the film, the function theory of fabricating method and its functional theory, and the influencing factors in the technological process. The research status worldwide is introduced in detail. By comparing pure Mg, Pd-caped Mg, non-palladium capped Mg, and Mg alloy hydrogen storage films, an ideal tendency for producing Mg-based film is pointed out, for example, looking for a cheap metal element to replace the high-priced Pd, compositing Mg film with other hydrogen storage alloy of catalytic elements, and so on.

Keywords:  Mg-based hydrogen storage film      Pd-caped Mg film      Mg alloy film      interlayer      intermetallic      cooperative effect  
Received:  03 June 2019      Revised:  28 June 2019      Accepted manuscript online: 
PACS:  88.30.R- (Hydrogen storage)  
  68.37.-d (Microscopy of surfaces, interfaces, and thin films)  
  61.82.Bg (Metals and alloys)  
Fund: 

Project supported by the Competitiveness Enhancement Program of National Research Tomsk Polytechnic University (Grant No. VIU-OEF-66/2019).

Corresponding Authors:  Lyu Jinzhe     E-mail:  czinchzhe1@tpu.ru

Cite this article: 

Lyu Jinzhe, Andrey M Lider, Viktor N Kudiiarov An overview of progress in Mg-based hydrogen storage films 2019 Chin. Phys. B 28 098801

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