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Harmonized Interphase Refinement for Robust Garnet Solid-State Batteries

delete2024-08-07
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PRE
AI
F
Fangjun Zhu
H
Huaxin Liu
H
Huang, Jiangnan
B
Baichao Zhang
S
Song Bai
邓文韬 封面图
邓文韬 (Wentao Deng)
G
Guoqiang Zou
H
Hongshuai Hou
纪效波 封面图
纪效波 (Xiaobo Ji) *
DOI:10.1002/adfm.202411737delete
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摘要

摘要

En 中文
Garnet electrolyte Li6.5La3Zr1.5Ta0.5O12 (LLZTO) has been identified as a promising candidate for solid-state batteries (SSBs). However, the implementation of garnet-based SSBs is severely restricted owing to the Li dendrite originating from the uneven Li+ deposition and the electron leakage. Herein, one high-performance garnet-based SSB is proposed through the enhancement of interfacial dynamics and the inhibition of electron penetration, induced by an artificial harmonized interphase (LSF). The formation of a tightly bonded LLZTO|Li interface is facilitated by the Li3Sb with lower interfacial energies against LLZTO and Li, elucidated by the density functional theory (DFT) calculations. Furthermore, electron leakage and dendrite infiltration are effectively suppressed by the LiF with the electron-insulating nature and an exceptional gamma E value. Therefore, a low interfacial resistance of 4.8 Omega cm2 is successfully achieved by the utilization of the functional LSF interphase layer, and the Li|LLZTO-LSF|Li symmetric cell displayed prolonged Li plating/stripping stability over 1200 h at 0.3 mA cm-2. Moreover, the LFP|LLZTO-LSF|Li full cell also exhibited notable cycling performance (93.1% capacity retention after 200 cycles at 1 C). The utilization of a synergistic interlayer has been identified as an effective strategy for the advancement of garnet-based solid-state lithium batteries. The LLZTO|Li interfacial stability is significantly enhanced via the LSF interphase layer, leading to uniform Li deposition. Specifically, the electronically insulating effect of LiF and the rapid transport properties of Li3Sb synergistically facilitate fast Li+ diffusion through the interphase layer without surface reduction, resulting in even Li deposition at the LLZTO|Li interface. image
Keyword:
electron leakage
garnet electrolyte
interface contact
interphase layer
Li dendrite

期刊

Advanced Functional Materials 封面图
Advanced Functional Materials
IF:
19
论文数:
3.5W
被引数:
32.1W

机构

C
Central South University
学者数:
10.0W
论文数: 7.2W
被引数: 10.9W
引用论文

引用论文

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