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Unraveling the Mechanisms of Lithium Metal Plating/Stripping via In Situ/Operando Analytical Techniques

机译:揭开锂金属镀层/剥离通过原位/手术数分析技术的机制

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摘要

Lithium, the lightest metal with the lowest standard reduction potential, has been long considered as the ultimate anode material for next-generation high-energy-density batteries. However, an unexpected Li dendrite formation, which causes poor reversibility of electrochemical reactions and safety concerns, is a major problem that has to be solved for the commercialization of Li metal anodes. For the implementation of stable Li metal anodes, complete understanding on the dendritic Li formation and its dissolution is essential for electrode material design, which requires the development of advanced characterization techniques. Specifically, compared to an ex situ characterization as a postmortem analysis, in situ/operando characterizations allow dynamic structural and chemical evolution to be directly observed in a realistic battery cell, which helps unravel the complex reactions and degradation mechanisms in Li metal anodes. Here, recent progress in the understanding of electrochemical behavior in Li metal anodes upon deposition and dissolution, verified by the in situ/operando analytical techniques using light, electron, X-ray, neutron, and magnetism-based characterizations, is covered. This progress report provides a fundamental understanding of Li deposition and dissolution mechanisms and highlights the critical role of in situ/operando analyses in developing stable Li metal anodes.
机译:锂电片,最低标准降低电位的最轻的金属,长期被认为是下一代高能密度电池的最终阳极材料。然而,意外的李枝晶形成,这导致电化学反应和安全问题的可逆性差,是必须解决Li金属阳极商业化的主要问题。为了实施稳定的Li金属阳极,完全了解树突式Li形成及其溶解对于电极材料设计是必不可少的,这需要开发先进的表征技术。具体而言,与EX原位表征相比作为后模拟分析,原位/操作扬说特征允许在现实的电池单元中直接观察到动态结构和化学进化,这有助于解开Li金属阳极中的复杂反应和降解机制。这里,通过使用光,电子,X射线,中子和磁性的特征在沉积和溶解时,在沉积和溶解中了解Li金属阳极电化学行为的最近进展,验证了使用光,电子,X射线,中子和磁性的表征。该进度报告提供了对LI沉积和溶出机制的基本理解,并突出了在稳定Li金属阳极开发稳定锂金属阳极时的原位/操作型分析的关键作用。

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