材料科学
离子
正交晶系
锂(药物)
快离子导体
电化学
空位缺陷
离子电导率
电解质
化学物理
化学稳定性
相(物质)
四面体
离子键合
电导率
离子运输机
半导体
结晶学
纳米技术
晶体结构
物理化学
电极
热力学
化学
光电子学
物理
内分泌学
有机化学
医学
作者
Jiajie Zhong,Bingkai Zhang,Feng Pan,Zhan Lin
标识
DOI:10.1021/acsami.1c24206
摘要
A novel inorganic solid-state electrolyte (ISSE) with high ionic conductivity is a crucial part of all-solid-state lithium-ion (Li-ion) batteries (ASSLBs). Herein, we first report on Li2ZnXS4 (LZXS, X = Si, Ge, and Sn) semiconductor-based ISSEs, crystallizing in the corner-sharing tetrahedron orthorhombic space group, to provide valuable insights into the structure, defect chemistry, phase stability, electrochemical stability, H2O/CO2 chemical stability, and Li-ion conduction mechanisms. A key feature for the Li-ion transport and low migration barrier is the interconnected and corner-shared [LiS4] units along the a-axis, which allows Li-ion transport via empty or occupied tetrahedron sites. A major finding is the first indication that Li-ion migration in Li2ZnSiS4 (LZSiS) has lower energy barriers (∼0.24 eV) compared to Li2ZnGeS4 (LZGS) and Li2ZnSnS4 (LZSnS), whether through vacancy migration or interstitial migration. However, LZGS and LZSnS exhibit greater H2O/CO2 stability compared to LZSiS. The novel framework of LZXS with relatively low Li-ion migration barriers and moderate electrochemical stability could benefit the ASSLB communities.
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