Recent progress in thermodynamic and kinetics modification of magnesium hydride hydrogen storage materials

Yafei Liu , Yusang Guo , Yaru Jiang, Lizhuang Feng, Yu Sun, Yijing Wang
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Abstract

Hydrogen energy has emerged as a pivotal solution to address the global energy crisis and pave the way for a cleaner, low-carbon, secure, and efficient modern energy system. A key imperative in the utilization of hydrogen energy lies in the development of high-performance hydrogen storage materials. Magnesium-based hydrogen storage materials exhibit remarkable advantages, including high hydrogen storage density, cost-effectiveness, and abundant magnesium resources, making them highly promising for the hydrogen energy sector. Nonetheless, practical applications of magnesium hydride for hydrogen storage face significant challenges, primarily due to their slow kinetics and stable thermodynamic properties. Herein, we briefly summarize the thermodynamic and kinetic properties of MgH2, encompassing strategies such as alloying, nanoscaling, catalyst doping, and composite system construction to enhance its hydrogen storage performance. Notably, nanoscaling and catalyst doping have emerged as more effective modification strategies. The discussion focuses on the thermodynamic changes induced by nanoscaling and the kinetic enhancements resulting from catalyst doping. Particular emphasis lies in the synergistic improvement strategy of incorporating nanocatalysts with confinement materials, and we revisit typical works on the multi-strategy optimization of MgH2. In conclusion, we conduct an analysis of outstanding challenges and issues, followed by presenting future research and development prospects for MgH2 as hydrogen storage materials.

Abstract Image

氢化镁储氢材料热力学和动力学改性的最新进展
氢能已成为应对全球能源危机的重要解决方案,并为建立更清洁、低碳、安全和高效的现代能源系统铺平了道路。利用氢能的当务之急是开发高性能的储氢材料。镁基储氢材料具有储氢密度高、成本效益高、镁资源丰富等显著优势,在氢能领域大有可为。然而,氢化镁在储氢方面的实际应用面临着巨大挑战,这主要是由于其缓慢的动力学和稳定的热力学特性。在此,我们简要总结了氢化镁的热力学和动力学特性,包括合金化、纳米化、催化剂掺杂和复合系统构建等策略,以提高其储氢性能。值得注意的是,纳米化和催化剂掺杂已成为更有效的改性策略。讨论的重点是纳米化引起的热力学变化和催化剂掺杂导致的动力学增强。我们特别强调了将纳米催化剂与约束材料相结合的协同改进策略,并重温了有关 MgH2 多策略优化的典型工作。最后,我们分析了尚未解决的挑战和问题,并展望了 MgH2 作为储氢材料的未来研究和发展前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
材料导报:能源(英文)
材料导报:能源(英文) Renewable Energy, Sustainability and the Environment, Nanotechnology
CiteScore
13.00
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