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Solid-State Electrolyte Design for Lithium Dendrite Suppression

delete2020-10-09
delete287
PRE
AI
X
Xiao Ji
S
Singyuk Hou
汪鹏飞 cover
汪鹏飞 (Pengfei Wang)
X
Xinzi He
N
Nan Piao
陈吉 cover
陈吉 (Ji Chen)
范
范修林 (Xiulin Fan)
Wang, Chunsheng cover
Wang, Chunsheng (Chunsheng Wang) *
DOI:10.1002/adma.202002741delete
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Abstract

Abstract

En 中文
All-solid-state Li metal batteries have attracted extensive attention due to their high safety and high energy density. However, Li dendrite growth in solid-state electrolytes (SSEs) still hinders their application. Current efforts mainly aim to reduce the interfacial resistance, neglecting the intrinsic dendrite-suppression capability of SSEs. Herein, the mechanism for the formation of Li dendrites is investigated, and Li-dendrite-free SSE criteria are reported. To achieve a high dendrite-suppression capability, SSEs should be thermodynamically stable with a high interface energy against Li, and they should have a low electronic conductivity and a high ionic conductivity. A cold-pressed Li3N-LiF composite is used to validate the Li-dendrite-free design criteria, where the highly ionic conductive Li3N reduces the Li plating/stripping overpotential, and LiF with high interface energy suppresses dendrites by enhancing the nucleation energy and suppressing the Li penetration into the SSEs. The Li3N-LiF layer coating on Li3PS4SSE achieves a record-high critical current of >6 mA cm(-2)even at a high capacity of 6.0 mAh cm(-2). The Coulombic efficiency also reaches a record 99% in 150 cycles. The Li3N-LiF/Li3PS4SSE enables LiCoO(2)cathodes to achieve 101.6 mAh g(-1)for 50 cycles. The design principle opens a new opportunity to develop high-energy all-solid-state Li metal batteries.
Keywords:
dendrite-free criteria
density functional theory calculations
interface energy
lithium-metal batteries
solid-state electrolytes
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Journal

Advanced Materials cover
Advanced Materials
IF:
26.8
Papers:
3.4W
Citations:
46.0W

Organization

University System of Maryland cover
University System of Maryland
Scholars:
6.5W
Papers: 5.6W
Citations: 113
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