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Recent advances on the thermal destabilization of Mg-based hydrogen storage materials

机译:基于MG基储氢材料的热稳定化的最新进展

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摘要

Magnesium hydride and its compounds have a high hydrogen storage capacity and are inexpensive, and thus have been considered as one of the most promising hydrogen storage materials for on-board applications. Nevertheless, Mg/MgH2 systems suffer from great drawbacks in terms of kinetics and thermodynamics for hydrogen uptake/release. Over the past decades, although significant progress has been achieved with respect to hydrogen sorption kinetics in Mg/MgH2 systems, their high thermal stability remains the main drawback, which hinders their practical applications. Accordingly, herein, we present a brief summary of the synthetic routes and a comprehensive overview of the advantages and disadvantages of the promising strategies to effectively tune the thermodynamics of Mg-based materials, such as alloying, nanostructuring, metastable phase formation, changing reaction pathway, and nano Mg-based composites. Among them nanostructuring and metastable phase formation, which have the superiority of changing the thermodynamics without affecting the hydrogen capacity, have attracted increasing interest in this field. To further optimize the hydrogen storage performance, we specially emphasize novel nanostructured materials, which have the advantage of combining alloy engineering, nanostructuring and the synergistic effect to change the thermodynamics of Mg/MgH2 to some extent. Furthermore, the remaining challenges and the directions of further research on MgH2, including the fundamental mechanism of the Mg-H bond instability, advanced synthetic routes, stabilizing nanostructures, and predicting novel composite materials, are proposed.
机译:氢化镁及其化合物具有高储氢容量并且廉价,因此被认为是用于车载应用中最有前途的储氢材料之一。然而,MG / MGH2系统在动力学和热力学方面患有氢气吸收/释放的热力学的缺点。在过去的几十年中,尽管在MG / MGH2系统中对氢吸入动力学进行了显着进展,但它们的高热稳定性仍然是主要的缺点,阻碍了其实际应用。因此,在此,我们介绍了合成路线的简要概述,以及有希望策略的优点和缺点的全面概述,以有效调整基于MG的材料的热力学,例如合金化,纳米结构,亚稳态形成,改变反应途径和纳米Mg基复合材料。其中纳米结构和亚稳态形成具有改变热力学的优越性而不影响氢气能力,吸引了对该领域的越来越低的兴趣。为了进一步优化储氢性能,我们特别强调了新型纳米结构材料,具有结合合金工程,纳米结构和协同效应的优点,以在一定程度上改变Mg / MgH2的热力学。此外,提出了对MGH2的进一步研究的剩余挑战和进一步研究的方向,包括Mg-H键不稳定性,先进的合成途径,稳定纳米结构和预测新型复合材料的基本机制。

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  • 来源
    《RSC Advances》 |2019年第1期|共21页
  • 作者单位

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

    Gen Res Inst Nonferrous Met 2 Xinjiekou Wai St Beijing 100088 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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