首页|Origin of high electrochemical stability of multi-metal chloride solid electrolytes for high energy all-solid-state lithium-ion batteries

Origin of high electrochemical stability of multi-metal chloride solid electrolytes for high energy all-solid-state lithium-ion batteries

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All-solid-state batteries (ASSBs) have gained substantial attention because of their intrinsic safety and potentially high energy density. To enable ASSBs, developing solid-state electrolytes (SSEs) with high electrochemical stability is of foremost significance. Here we report a multi-metal chloride SSEs with an excellent electrochemical stability (up to 4.5 V vs. Li+/Li), which originates from the strong Zr-Cl bonding. In addition, a high room temperature ionic conductivity of 1.58 mS/cm was achieved via increasing the Li vacancies in the structure as well as balancing carrier and vacancy concentration. Coupled with nickel-rich cathodes (LiNi0.83Co0.12Mn0.05O2) and high-voltage LiCoO2 (4.5 V vs. Li+/Li), ASSBs demonstrated superb electrochemical performance. This work provides an in-depth structural understanding of multi-metal chloride SSEs and feasible strategies to realize highenergy-density ASSBs.

Electrochemical stabilityIon conductivitiesHalidesSolid-state electrolytesAll solid-state batteriesSUPERIONIC CONDUCTORFERROMAGNETISM

Xu, Guofeng、Luo, Liang、Liang, Jianwen、Zhao, Shangqian、Yang, Rong、Wang, Changhong、Yu, Tianwei、Wang, Limin、Xiao, Wei、Wang, Jiantao、Yu, Jinqiu、Sun, Xueliang

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China Automot Battery Res Inst Co Ltd

Rare Earth Funct Mat Xiongan Innovat Ctr Co Ltd

Univ Western Ontario

GRINM Grp Co Ltd

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2022

Nano Energy

Nano Energy

EISCI
ISSN:2211-2855
年,卷(期):2022.92
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