材料科学
晶界
电解质
离子电导率
电导率
离子
电极
兴奋剂
离子键合
陶瓷
快离子导体
化学工程
复合材料
光电子学
化学
物理化学
微观结构
工程类
有机化学
作者
Jie Biao,Bing Han,Yidan Cao,Qidong Li,Guiming Zhong,Jiabin Ma,Likun Chen,Ke Yang,Jinshuo Mi,Yonghong Deng,Ming Liu,Wei Lv,Feiyu Kang,Yan‐Bing He
标识
DOI:10.1002/adma.202208951
摘要
Poor ion and high electron transport at the grain boundaries (GBs) of ceramic electrolytes are the primary reasons for lithium filament infiltration and short-circuiting of all-solid-state lithium metal batteries (ASLMBs). Herein, it is discovered that Li2 CO3 at the GBs of Li7 La3 Zr2 O12 (LLZO) sheets is reduced to highly electron-conductive LiCx during cycling, resulting in lithium penetration of LLZO. The ionic and electronic conductivity of the GBs within LLZO can be simultaneously tuned using sintered Li3 AlF6 . The generated LiAlO2 (LAO) infusion and F-doping at the GBs of LLZO (LAO-LLZOF) significantly reduce the Li2 CO3 content and broaden the energy bandgap of LLZO, which decreases the electronic conductivity of LAO-LLZOF. LAO forms a 3D continuous ion transport network at the GB that significantly improves the total ionic conductivity. Lithium penetration within LLZO is suppressed and an all-solid-state LiFePO4 /LAO-LLZOF/Li battery stably cycled for 5500 cycles at 3 C. This work reveals the chemistry of Li2 CO3 at the LLZO GBs during cycling, presents a novel lithium penetration mechanism within garnet electrolytes, and provides an innovative method to simultaneously regulate the ion and electron transport at the GBs in garnet electrodes for advanced ASLMBs.
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