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Understanding materials challenges for rechargeable ion batteries with in situ transmission electron microscopy

机译:通过原位透射电子显微镜了解可充电离子电池的材料挑战

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摘要

An in-depth understanding of material behaviours under complex electrochemical environment is critical for the development of advanced materials for the next-generation rechargeable ion batteries. The dynamic conditions inside a working battery had not been intensively explored until the advent of various in situ characterization techniques. Real-time transmission electron microscopy of electrochemical reactions is one of the most significant breakthroughs poised to enable radical shift in our knowledge on how materials behave in the electrochemical environment. This review, therefore, summarizes the scientific discoveries enabled by in situ transmission electron microscopy, and specifically emphasizes the applicability of this technique to address the critical challenges in the rechargeable ion battery electrodes, electrolyte and their interfaces. New electrochemical systems such as lithium–oxygen, lithium–sulfur and sodium ion batteries are included, considering the rapidly increasing application of in situ transmission electron microscopy in these areas. A systematic comparison between lithium ion-based electrochemistry and sodium ion-based electrochemistry is also given in terms of their thermodynamic and kinetic differences. The effect of the electron beam on the validity of in situ observation is also covered. This review concludes by providing a renewed perspective for the future directions of in situ transmission electron microscopy in rechargeable ion batteries.
机译:深入了解复杂电化学环境下的材料行为对于开发下一代可充电离子电池的高级材料至关重要。直到各种原位表征技术的出现,才对工作电池内部的动态条件进行了深入研究。电化学反应的实时透射电子显微镜是最重要的突破之一,有望使我们对材料在电化学环境中的行为的认识发生根本转变。因此,本综述总结了原位透射电子显微镜的科学发现,并特别强调了该技术在解决可再充电离子电池电极,电解质及其界面方面的关键挑战方面的适用性。考虑到原位透射电子显微镜在这些领域的快速增长的应用,包括了新的电化学系统,例如锂-氧,锂-硫和钠离子电池。就锂离子电化学和钠离子电化学之间的热力学和动力学差异,也进行了系统的比较。也涵盖了电子束对原位观察有效性的影响。这篇综述的结尾为可再充电离子电池中原位透射电子显微镜的未来方向提供了新的视角。

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