Xie Haolin, Yang Zhihao, Liu Jiaxing, Wu Weiying, Huang Tieqi, Liu Hongtao
College of Chemistry and Chemical Engineering, Central South University, Changsha 410083, P. R. China.
Hunan Provincial Key Laboratory of Chemical Power Sources, Changsha 410083, P. R. China.
Chem Commun (Camb). 2025 Jul 10;61(57):10449-10469. doi: 10.1039/d5cc03141a.
All-solid-state lithium metal batteries (ASSLMBs) have garnered significant attention due to their potential for high energy densities and enhanced safety. Solid-state electrolytes (SSEs) are critical components in ASSLMBs, with their ionic conductivity and interfacial compatibility directly influencing battery performance. However, current SSEs often exhibit lower ionic conductivity and higher interfacial resistance compared to liquid electrolytes. To address these challenges, high-entropy strategies have emerged as promising approaches to enhance structural disorder and stability in SSEs. This review provides a comprehensive overview of high-entropy strategies applied to SSEs, including inorganic, polymer, and composite SSEs. We elucidate the fundamental concepts of high entropy and its four core effects (high-entropy effect, lattice distortion effect, sluggish-diffusion effect, and cocktail effect) and discuss their impact on the performance of SSEs. Recent progress in applying high-entropy strategies to different types of SSEs is summarized, highlighting structural optimization and performance enhancement. Challenges and future directions for the development of high-entropy SSEs are also presented. The insights provided in this review aim to guide the rational design of high-performance SSEs for next-generation energy storage systems.
全固态锂金属电池(ASSLMBs)因其具有高能量密度和更高安全性的潜力而备受关注。固态电解质(SSEs)是ASSLMBs的关键组成部分,其离子传导率和界面兼容性直接影响电池性能。然而,与液体电解质相比,目前的SSEs通常表现出较低的离子传导率和较高的界面电阻。为应对这些挑战,高熵策略已成为增强SSEs结构无序性和稳定性的有前景的方法。本文综述全面概述了应用于SSEs的高熵策略,包括无机、聚合物和复合SSEs。我们阐明了高熵的基本概念及其四个核心效应(高熵效应、晶格畸变效应、扩散迟缓效应和混合效应),并讨论了它们对SSEs性能的影响。总结了将高熵策略应用于不同类型SSEs的最新进展,重点介绍了结构优化和性能提升。还介绍了高熵SSEs发展面临的挑战和未来方向。本文提供的见解旨在指导为下一代储能系统合理设计高性能SSEs。