Department of Materials Science and Engineering, School of Innovation and Entrepreneurship, Southern University of Science and Technology, Shenzhen, 518055, P. R. China.
ISME Department of CoB, National Center for Applied Mathematics Shenzhen (NCAMS-Digital Economy), Southern University of Science and Technology, Shenzhen, 518055, P. R. China.
ChemSusChem. 2023 May 5;16(9):e202202156. doi: 10.1002/cssc.202202156. Epub 2023 Mar 23.
All-solid-state lithium batteries (ASSBs) enabled by solid-state electrolytes (SEs) including oxide-based and sulfide-based electrolytes have gained worldwide attention because of their intrinsic safety and higher energy density over conventional lithium-ion batteries (LIBs). However, despite the high ionic conductivity of advanced SEs, ASSBs still exhibit high overall internal resistance, the most significant contributor of which can be ascribed to the cathode-SE interfaces. This review seeks to clarify the critical issues regarding the cathode-SE interfaces, including fundamental principles and corresponding solutions. First, major issues concerning electro-chemo-mechanical instability between cathodes and SEs and their formation mechanisms are discussed. Then, specific problems in oxides and sulfides and various solutions and strategies toward interfacial modifications are highlighted. Efforts toward the characterization and analysis of cathode-SE interfaces with advanced techniques are also summarized. Finally, perspectives are offered on several problems demanding urgent solutions and the future development of SE applications and ASSBs.
全固态锂电池(ASSBs)采用固态电解质(SEs),包括氧化物和硫化物电解质,由于其在传统锂离子电池(LIBs)之上的固有安全性和更高的能量密度,受到了全球的关注。然而,尽管先进的 SE 具有高离子电导率,ASSBs 仍然表现出高整体内阻,其中最显著的贡献可以归因于阴极-SE 界面。本综述旨在阐明与阴极-SE 界面有关的关键问题,包括基本原理和相应的解决方案。首先,讨论了阴极和 SE 之间的电-化学-机械不稳定性的主要问题及其形成机制。然后,强调了氧化物和硫化物中的具体问题以及各种界面修饰的解决方案和策略。还总结了使用先进技术对阴极-SE 界面进行表征和分析的工作。最后,就需要紧急解决的几个问题以及 SE 应用和 ASSBs 的未来发展提出了展望。