Lan Xuexia, Luo Na, Li Zhen, Peng Jing, Cheng Hui-Ming
Institute of Technology for Carbon Neutrality, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.
Faculty of Materials Science and Energy Engineering, Shenzhen Institute of Advanced Technology, Shenzhen 518055, China.
ACS Nano. 2024 Apr 2;18(13):9285-9310. doi: 10.1021/acsnano.4c00128. Epub 2024 Mar 24.
Replacing liquid electrolytes and separators in conventional lithium-ion batteries with solid-state electrolytes (SSEs) is an important strategy to ensure both high energy density and high safety. Searching for fast ionic conductors with high electrochemical and chemical stability has been the core of SSE research and applications over the past decades. Based on the atomic-level thickness and infinitely expandable planar structure, numerous two-dimensional materials (2DMs) have been exploited and applied to address the most critical issues of low ionic conductivity of SSEs and lithium dendrite growth in all-solid-state lithium batteries. This review introduces the research process of 2DMs in SSEs, then summarizes the mechanisms and strategies of inert and active 2DMs toward Li transport to improve the ionic conductivity and enhance the electrode/SSE interfacial compatibility. More importantly, the main challenges and future directions for the application of 2DMs in SSEs are considered, including the importance of exploring the relationship between the anisotropic structure of 2DMs and Li diffusion behavior, the exploitation of more 2DMs, and the significance of characterizations in elucidating the mechanisms of Li transport and interfacial reactions. This review aims to provide a comprehensive understanding to facilitate the application of 2DMs in SSEs.
用固态电解质(SSE)取代传统锂离子电池中的液体电解质和隔膜是确保高能量密度和高安全性的重要策略。在过去几十年中,寻找具有高电化学和化学稳定性的快速离子导体一直是SSE研究和应用的核心。基于原子级厚度和无限可扩展的平面结构,众多二维材料(2DM)已被开发并应用于解决全固态锂电池中SSE离子电导率低和锂枝晶生长等最关键问题。本文综述了2DM在SSE中的研究过程,总结了惰性和活性2DM促进Li传输以提高离子电导率和增强电极/SSE界面兼容性的机制和策略。更重要的是,考虑了2DM在SSE中应用的主要挑战和未来方向,包括探索2DM各向异性结构与Li扩散行为之间关系的重要性、更多2DM的开发以及表征在阐明Li传输和界面反应机制方面的意义。本文旨在提供全面的理解,以促进2DM在SSE中的应用。