Multi-dimensional correlation of layered Li-rich Mn-based cathode materials

Zhe Yang, Chaoliang Zheng, Zhicheng Wei, Jian-jian Zhong, Huirong Liu, Jiameng Feng, Jianling Li, F. Kang
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引用次数: 8

Abstract

Lithium-rich manganese-based cathode materials are expected to promote the commercialization of lithium-ion batteries to a new stage by virtue of their ultrahigh specific capacity and energy density advantages. However, they are still restricted by complex phase transitions and electrochemical performance degradation caused by labile anion charge compensation. A deep understanding of the electrochemical properties contained in their intrinsic structures and the key driving factors of structural deterioration during cycling are crucial to guide the preparation and optimization of lithium-rich materials. Considering recent progress, this review introduces the intrinsic properties of Li-rich manganese-based cathode materials from interatomic interactions to particle morphology at multiple scales in the spatial dimension. The charge compensation mechanism and energy band reorganization of the initial charge and discharge, the structural evolution during cycling and the electrochemical reaction kinetics of the materials are analyzed in the temporal dimension. Based on the relationship between structure and electrochemical performance, preparation methods and modification methods are introduced to guide and design cathode materials. Effective characterization methods for studying anion charge compensation behavior are also demonstrated. This review provides important guidance and suggestions for making full use of the high specific capacity in these materials derived from anion redox and the maintaining of its stability.
层状富锂锰基正极材料的多维相关研究
富锂锰基正极材料凭借其超高比容量和能量密度的优势,有望将锂离子电池的商业化推进到一个新的阶段。然而,由于不稳定的阴离子电荷补偿引起的复杂相变和电化学性能下降,它们仍然受到限制。深入了解其内在结构所包含的电化学性质以及循环过程中结构劣化的关键驱动因素对于指导富锂材料的制备和优化至关重要。本文综述了富锂锰基正极材料在空间维度上从原子间相互作用到粒子形态的内在特性。从时间维度分析了材料初始充放电的电荷补偿机制和能带重组、循环过程中的结构演变以及电化学反应动力学。从结构与电化学性能的关系出发,介绍了阴极材料的制备方法和改性方法,指导和设计阴极材料。并给出了研究阴离子电荷补偿行为的有效表征方法。为充分利用这些材料中阴离子氧化还原产生的高比容量,保持其稳定性提供了重要的指导和建议。
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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