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Design Strategies, Practical Considerations, and New Solution Processes of Sulfide Solid Electrolytes for All-Solid-State Batteries

机译:全固态电池硫化物固体电解质的设计策略,实际考虑和新的解决方法

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摘要

Owing to the ever-increasing safety concerns about conventional lithium-ion batteries, whose applications have expanded to include electric vehicles and grid-scale energy storage, batteries with solidified electrolytes that utilize nonflammable inorganic materials are attracting considerable attention. In particular, owing to their superionic conductivities (as high as approximate to 10(-2) S cm(-1)) and deformability, sulfide materials as the solid electrolytes (SEs) are considered the enabling material for high-energy bulk-type all-solid-state batteries. Herein the authors provide a brief review on recent progress in sulfide Li- and Na-ion SEs for all-solid-state batteries. After the basic principles in designing SEs are considered, the experimental exploration of multicomponent systems and ab initio calculations that accelerate the search for stronger candidates are discussed. Next, other issues and challenges that are critical for practical applications, such as instability in air, electrochemical stability, and compatibility with active materials, are discussed. Then, an emerging progress in liquid-phase synthesis and solution process of SEs and its relevant prospects in ensuring intimate ionic contacts and fabricating sheet-type electrodes is highlighted. Finally, an outlook on the future research directions for all-solid-state batteries employing sulfide superionic conductors is provided.
机译:由于对常规锂离子电池的安全性日益关注,其应用已扩展到包括电动汽车和电网规模的能量存储,具有利用不可燃无机材料的固化电解质的电池引起了极大的关注。特别地,由于其超离子电导率(高达约10(-2)S cm(-1))和可变形性,硫化物材料作为固体电解质(SEs)被认为是高能本体型的使能材料全固态电池。本文作者简要回顾了用于全固态电池的硫化锂和钠离子SE的最新进展。在考虑了设计SE的基本原理之后,讨论了多组件系统的实验探索和从头开始的计算,这些计算加快了寻找更强候选者的速度。接下来,讨论了对于实际应用至关重要的其他问题和挑战,例如空气的不稳定性,电化学稳定性以及与活性材料的相容性。然后,突出了SEs的液相合成和固溶过程中的新兴进展及其在确保紧密的离子接触和制造片状电极方面的相关前景。最后,对使用硫化物超离子导体的全固态电池的未来研究方向进行了展望。

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