Ball Milling Innovations Advance Mg-Based Hydrogen Storage Materials Towards Practical Applications

Author:

Xu Yaohui12ORCID,Li Yuting3,Hou Quanhui4,Hao Yechen5,Ding Zhao3ORCID

Affiliation:

1. Laboratory for Functional Materials, School of New Energy Materials and Chemistry, Leshan Normal University, Leshan 614000, China

2. Leshan West Silicon Materials Photovoltaic New Energy Industry Technology Research Institute, Leshan 614000, China

3. College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China

4. School of Automotive Engineering, Yancheng Institute of Technology, Yancheng 224051, China

5. Department of Computer Science, Illinois Institute of Technology, Chicago, IL 60616, USA

Abstract

Mg-based materials have been widely studied as potential hydrogen storage media due to their high theoretical hydrogen capacity, low cost, and abundant reserves. However, the sluggish hydrogen absorption/desorption kinetics and high thermodynamic stability of Mg-based hydrides have hindered their practical application. Ball milling has emerged as a versatile and effective technique to synthesize and modify nanostructured Mg-based hydrides with enhanced hydrogen storage properties. This review provides a comprehensive summary of the state-of-the-art progress in the ball milling of Mg-based hydrogen storage materials. The synthesis mechanisms, microstructural evolution, and hydrogen storage properties of nanocrystalline and amorphous Mg-based hydrides prepared via ball milling are systematically reviewed. The effects of various catalytic additives, including transition metals, metal oxides, carbon materials, and metal halides, on the kinetics and thermodynamics of Mg-based hydrides are discussed in detail. Furthermore, the strategies for synthesizing nanocomposite Mg-based hydrides via ball milling with other hydrides, MOFs, and carbon scaffolds are highlighted, with an emphasis on the importance of nanoconfinement and interfacial effects. Finally, the challenges and future perspectives of ball-milled Mg-based hydrides for practical on-board hydrogen storage applications are outlined. This review aims to provide valuable insights and guidance for the development of advanced Mg-based hydrogen storage materials with superior performance.

Funder

Leshan West Silicon Materials Photovoltaic New Energy Industry Technology Research Institute

Fundamental Research Funds for the Central Universities

Opening Project of Crystalline Silicon Photovoltaic New Energy Research Institute

Leshan Normal University Research Program

Publisher

MDPI AG

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