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Destabilized Passivation Layer on Magnesium-Based Intermetallics as Potential Anode Active Materials for Magnesium Ion Batteries

机译:镁基金属间化合物上不稳定的钝化层作为镁离子电池的潜在阳极活性材料

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摘要

Passivation of magnesium metal anode is one of the critical challenges for the development of magnesium batteries. Here we investigated the passivation process of an intermetallic anode: Mg3Bi2 synthesized by solid-state and thin film process. The Mg3Bi2 composite electrode shows excellent reversibility in magnesium bis(trifluoromethansulfonylamide) dissolved in acetonitrile, while Mg3Sb2, which has same crystal structure and similar chemical properties, is electrochemically inactive. We also fabricated the Mg3Bi2 thin film electrodes, which show reversibility with low overpotential not only in the acetonitrile solution but also glyme-based solutions. Surface layer corresponding to the decomposed TFSA anion is slightly suppressed in the case of the Mg3Bi2 thin film electrode, compared with Mg metal. Comparative study of hydrolysis process of the Mg3Bi2 and the Mg3Sb2 suggests that the both intermetallic anodes are not completely passivated. The bond valence sum mapping of the Mg3Bi2 indicates that the fast Mg2+ diffusion pathway between 2d tetrahedral sites is formed. The electrochemical properties of the Mg3Bi2 anode is mainly due to the less passivation surface with the fast Mg2+ diffusion pathways.
机译:镁金属阳极的钝化是镁电池发展的关键挑战之一。在这里,我们研究了金属间阳极的钝化过程:通过固态和薄膜工艺合成的Mg3Bi2。 Mg3Bi2复合电极在溶解于乙腈的双(三氟甲磺酰基酰胺)镁中显示出极好的可逆性,而具有相同晶体结构和相似化学性质的Mg3Sb2具有电化学惰性。我们还制造了Mg3Bi2薄膜电极,该电极不仅在乙腈溶液中而且在基于甘醇二甲醚的溶液中均显示出具有低超电势的可逆性。与Mg金属相比,在Mg3Bi2薄膜电极的情况下,对应于分解的TFSA阴离子的表面层被稍微抑制。 Mg3Bi2和Mg3Sb2水解过程的比较研究表明,两个金属间阳极均未完全钝化。 Mg3Bi2的键价和图谱表明在2d四面体位点之间形成了快速的Mg 2 + 扩散路径。 Mg 3 Bi 2 阳极的电化学性质主要是由于钝化表面少,Mg 2 + 扩散路径快所致。

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