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阴极/电解质界面的致密化以增强LiCoO在4.65V时的可逆性。

Densification of Cathode/Electrolyte Interphase to Enhance Reversibility of LiCoO at 4.65 V.

作者信息

Ren Hengyu, Hu Jiaxuan, Ji Haocheng, Huang Yuxiang, Zhao Wenguang, Huang Weiyuan, Wang Xiaohu, Yi Haocong, Song Yongli, Liu Jiajie, Liu Tongchao, Liu Ming, Zhao Qinghe, Pan Feng

机构信息

School of Advanced Materials, Peking University Shenzhen Graduate School, Peking University, Shenzhen, Guangdong, 518055, China.

Tsinghua-Berkeley Shenzhen Institute & Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, 518055, China.

出版信息

Adv Mater. 2024 Oct;36(40):e2408875. doi: 10.1002/adma.202408875. Epub 2024 Aug 29.

Abstract

For LiCoO (LCO) operated beyond 4.55 V (vs Li/Li), it usually suffers from severe surface degradation. Constructing a robust cathode/electrolyte interphase (CEI) is effective to alleviate the above issues, however, the correlated mechanisms still remain vague. Herein, a progressively reinforced CEI is realized via constructing Zr─O deposits (ZrO and LiZrO) on LCO surface (i.e., Z-LCO). Upon cycle, these Zr─O deposits can promote the decomposition of LiPF, and progressively convert to the highly dispersed Zr─O─F species. In particular, the chemical reaction between LiF and Zr─O─F species further leads to the densification of CEI, which greatly reinforces its toughness and conductivity. Combining the robust CEI and thin surface rock-salt layer of Z-LCO, several benefits are achieved, including stabilizing the surface lattice oxygen, facilitating the interface Li transport kinetics, and enhancing the reversibility of O3/H1-3 phase transition, etc. As a result, the Z-LCO||Li cells exhibit a high capacity retention of 84.2% after 1000 cycles in 3-4.65 V, 80.9% after 1500 cycles in 3-4.6 V, and a high rate capacity of 160 mAh g at 16 C (1 C = 200 mA g). This work provides a new insight for developing advanced LCO cathodes.

摘要

对于在4.55 V(相对于Li/Li)以上运行的钴酸锂(LCO),它通常会遭受严重的表面降解。构建坚固的阴极/电解质界面(CEI)可有效缓解上述问题,然而,相关机制仍不明确。在此,通过在LCO表面构建Zr─O沉积物(ZrO和LiZrO)(即Z-LCO)实现了逐步增强的CEI。在循环过程中,这些Zr─O沉积物可促进LiPF的分解,并逐步转化为高度分散的Zr─O─F物种。特别地,LiF与Zr─O─F物种之间的化学反应进一步导致CEI致密化,极大地增强了其韧性和导电性。结合Z-LCO坚固的CEI和薄的表面岩盐层,实现了几个好处,包括稳定表面晶格氧、促进界面锂传输动力学以及增强O3/H1-3相变的可逆性等。结果,Z-LCO||Li电池在3-4.65 V下1000次循环后具有84.2%的高容量保持率,在3-4.6 V下1500次循环后具有80.9%的高容量保持率,在16 C(1 C = 200 mA g)下具有160 mAh g的高倍率容量。这项工作为开发先进的LCO阴极提供了新的见解。

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