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用于高界面稳定性和导电性的固体电解质纳米壳对LiCoO的表面钝化

Surface Passivation of LiCoO by Solid Electrolyte Nanoshell for High Interfacial Stability and Conductivity.

作者信息

Peng Jun, Peng Hao, Shi Chen-Guang, Huang Ling, Sun Shi-Gang

机构信息

College of Chemistry and Chemical Engineering, State Key Laboratory of Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, Xiamen University, Xiamen, 361005, P. R. China.

Tianmu Lake Institute of Advanced Energy Storage Technologies, China.

出版信息

ChemSusChem. 2023 Dec 19;16(24):e202300715. doi: 10.1002/cssc.202300715. Epub 2023 Oct 10.

Abstract

The practical application of lithium cobalt oxide (LiCoO ) cathodes at high voltages is hindered by the instability of the surface structure and side reactions with the electrolyte. Herein, we prepared a multifunctional hierarchical core@double-shell structured LiCoO (MS-LCO) cathode material using a scalable sol-gel method. The MS-LCO cathode material comprised an outer shell with fast lithium-ion conductivity, a La/Zr co-doped inner shell, and a bulk LiCoO core. The outermost shell prevented direct contact between the electrolyte and LiCoO core, which alleviated the electrolyte decomposition and loss of active cobalt, while the La/Zr co-doped shell improved the structural stability at higher voltages in a half-cell with a liquid electrolyte. The MS-LCO cathode exhibited a stable capacity of 163.1 mAh g after 500 cycles at 0.5 C, and a high specific capacity of 166.8 mAh g at 2 C. In addition, a solid lithium battery with the surface-passivated MS-LCO cathode and a polyethylene oxide (PEO)-based inorganic/organic composite electrolyte retained 85.8 % of its initial discharge capacity after 150 cycles at a charging cutoff voltage of 4.3 V. Thus, the introduction of a surface-passivating shell can effectively suppress the decomposition of PEO caused by highly reactive oxygen species in LiCoO at high voltages.

摘要

钴酸锂(LiCoO₂)阴极在高电压下的实际应用受到表面结构不稳定性以及与电解质发生副反应的阻碍。在此,我们采用可扩展的溶胶 - 凝胶法制备了一种多功能分级核@双壳结构的钴酸锂(MS - LCO)阴极材料。MS - LCO阴极材料由具有快速锂离子传导性的外壳、La/Zr共掺杂的内壳以及块状LiCoO₂核组成。最外层壳层阻止了电解质与LiCoO₂核的直接接触,这减轻了电解质分解和活性钴的损失,而La/Zr共掺杂壳层提高了在具有液体电解质的半电池中较高电压下的结构稳定性。MS - LCO阴极在0.5 C下500次循环后表现出163.1 mAh g的稳定容量,在2 C下具有166.8 mAh g的高比容量。此外,具有表面钝化的MS - LCO阴极和基于聚环氧乙烷(PEO)的无机/有机复合电解质的固态锂电池在4.3 V充电截止电压下150次循环后保留了其初始放电容量的85.8%。因此,引入表面钝化壳层可以有效抑制LiCoO₂在高电压下由高活性氧物种引起的PEO分解。

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