Advances in electrolyte–anode interface engineering of solid-state lithium metal batteries

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Menghong Li, Shubin Yang, Bin Li
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Abstract

Solid-state lithium metal batteries are considered to be the next generation of energy storage systems due to the high energy density brought by the use of metal lithium anode and the safety features brought by the use of solid electrolytes (SEs). Unfortunately, besides the safety features, using SEs brings issues of interfacial contact of lithium anode and electrolytes. Recently, to realize the application of solid-state lithium metal batteries, significant achievements have been made in the interface engineering of solid-state batteries, and various new strategies have been proposed. In this review, from the interface failure perspective of solid-state lithium metal batteries, we summarize failure mechanisms in terms of poor physical contact, weak chemical/electrochemical stability, continuing contact degradation, and uncontrollable lithium deposition. We then focused on the latest strategies for solving interface issues, including advancing in improving the physical solid–solid contact, increasing the electrochemical/chemical stability, restraining continuing contact degradation, and controlling homogeneous lithium deposition. The ultimate and paramount future developing directions of solid-state lithium metal battery interface engineering are proposed.

Abstract Image

固态锂金属电池电解质阳极界面工程的进展
固态锂金属电池因使用金属锂阳极带来的高能量密度和使用固态电解质(SE)带来的安全特性而被认为是下一代储能系统。遗憾的是,除了安全特性外,使用固态电解质还会带来锂负极与电解质界面接触的问题。近年来,为了实现固态锂金属电池的应用,固态电池的界面工程学取得了重大成就,并提出了各种新策略。在这篇综述中,我们从固态锂金属电池界面失效的角度,总结了物理接触不良、化学/电化学稳定性弱、持续接触降解和锂沉积不可控等失效机制。然后,我们重点介绍了解决界面问题的最新策略,包括改善固-固物理接触、提高电化学/化学稳定性、抑制持续接触降解和控制锂的均匀沉积。提出了固态锂金属电池界面工程的最终和最重要的未来发展方向。
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