Recent advances in high-performance lithium-rich manganese-based materials for solid-state lithium batteries

IF 6 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Keke Gao, Chunwen Sun and Zelin Wang
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Abstract

All-solid-state lithium batteries (ASSBs) with high energy density and intrinsic safety have received increasing attention, and their performance largely depends on cathode materials. Lithium-rich manganese-based materials (LRMs) have been regarded as the most promising cathode material for next-generation lithium-ion batteries owing to their high theoretical specific capacity (>250 mA h g−1) and low cost. However, existing challenges, including irreversible oxygen release, poor electrochemical reaction kinetics and cycle stability, and voltage decay/hysteresis, have seriously impeded their further commercial application. Furthermore, the application of LRMs in solid-state batteries has rarely been reviewed. In this review, we first elucidate the crystal structure, the electrochemical reaction mechanism and the origin of the high capacity of LRMs. Secondly, we comprehensively summarize the development of LRMs in the systems of solid-state batteries in recent years, and the interfacial chemical/electrochemical stability between the cathode and solid electrolyte is highlighted, which is the main factor determining the performance of ASSBs. Finally, we discuss the challenges and prospects facing the development of high-performance solid-state batteries with LRMs cathodes. Particularly, we highlight the combination of LRMs with halide solid electrolytes processing high ionic conductivity as well lithium/silicon carbon anodes with high specific capacity to construct high-performance solid-state batteries in the future.

Abstract Image

固态锂电池用高性能富锂锰基材料的最新进展
具有高能量密度和内在安全性的全固态锂电池(ASSB)越来越受到关注,而其性能在很大程度上取决于正极材料。富锂锰基材料(LRMs)具有理论比容量高(250 mAh g-1)和成本低的特点,被认为是最有希望用于下一代锂离子电池的正极材料。然而,现有的问题,包括不可逆氧释放、电化学反应动力学和循环稳定性差、电压衰减/滞后等,严重阻碍了其进一步的商业应用。然而,有关 LRMs 在固态电池中的应用却鲜有报道。本文首先阐明了 LRMs 的晶体结构、电化学反应机理和高容量的来源。其次,我们全面总结了近年来 LRMs 在固态电池体系中的发展,并着重强调了阴极与固体电解质之间的界面化学/电化学稳定性,这是决定其 ASSB 性能的主要因素。最后,我们讨论了开发采用 LRMs 阴极的高性能固态电池所面临的挑战和前景。我们特别强调了 LRMs 与处理高离子电导率的卤化物固体电解质以及高比容量的锂/硅碳阳极的结合,以便在未来构建高性能固态电池。
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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来源期刊
Materials Chemistry Frontiers
Materials Chemistry Frontiers Materials Science-Materials Chemistry
CiteScore
12.00
自引率
2.90%
发文量
313
期刊介绍: Materials Chemistry Frontiers focuses on the synthesis and chemistry of exciting new materials, and the development of improved fabrication techniques. Characterisation and fundamental studies that are of broad appeal are also welcome. This is the ideal home for studies of a significant nature that further the development of organic, inorganic, composite and nano-materials.
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