Ion transport and structural design of lithium-ion conductive solid polymer electrolytes: a perspective

Bo Tong, Ziyu Song, Hao Wu, Xingxing Wang, Wenfang Feng, Zhibin Zhou, Heng Zhang
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引用次数: 24

Abstract

Solid polymer electrolytes (SPEs) possess several merits including no leakage, ease in process, and suppressing lithium dendrites growth. These features are beneficial for improving the cycle life and safety performance of rechargeable lithium metal batteries (LMBs), as compared to conventional non-aqueous liquid electrolytes. Particularly, the superior elasticity of polymeric material enables the employment of SPEs in building ultra-thin and flexible batteries, which could further expand the application scenarios of high-energy rechargeable LMBs. In this perspective, recent progresses on ion transport mechanism of SPEs and structural designs of electrolyte components (e.g. conductive lithium salts, polymer matrices) are scrutinized. In addition, key achievements in the field of single lithium-ion conductive SPEs are also outlined, aiming to provide the status quo in those SPEs with high selectivity in cationic transport. Finally, possible strategies for improving the performance of SPEs and their rechargeable LMBs are also discussed.
锂离子导电固体聚合物电解质的离子输运与结构设计
固体聚合物电解质(spe)具有无泄漏、易于加工和抑制锂枝晶生长等优点。与传统的非水液体电解质相比,这些特性有利于提高可充电锂金属电池(lmb)的循环寿命和安全性能。特别是聚合物材料优越的弹性,使spe能够用于制造超薄柔性电池,这将进一步扩展高能可充电lmb的应用场景。从这一角度出发,综述了近年来spe离子传输机理和电解质组分(如导电锂盐、聚合物基质)结构设计方面的研究进展。此外,还概述了单锂离子导电spe领域的主要研究成果,旨在为高选择性阳离子输运spe的研究现状提供参考。最后,讨论了提高spe及其可充电lmb性能的可能策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.40
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