材料科学
离子键合
导电体
化学物理
从头算
锂(药物)
电导率
快离子导体
晶体结构
离子电导率
导线
从头算量子化学方法
分子动力学
离子
结晶学
纳米技术
Crystal(编程语言)
电解质
计算化学
分子
物理化学
电极
化学
计算机科学
复合材料
内分泌学
医学
有机化学
程序设计语言
作者
Xingfeng He,Qiang Bai,Yunsheng Liu,Adelaide M. Nolan,Chen Ling,Yifei Mo
标识
DOI:10.1002/aenm.201902078
摘要
Abstract As technologically important materials for solid‐state batteries, Li super‐ionic conductors are a class of materials exhibiting exceptionally high ionic conductivity at room temperature. These materials have unique crystal structural frameworks hosting a highly conductive Li sublattice. However, it is not understood why certain crystal structures of the super‐ionic conductors lead to high conductivity in the Li sublattice. In this study, using topological analysis and ab initio molecular dynamics simulations, the crystal structures of all Li‐conducting oxides and sulfides are studied systematically and the key features pertaining to fast‐ion conduction are quantified. In particular, a unique feature of enlarged Li sites caused by large local spaces in the crystal structural framework is identified, promoting fast conduction in the Li‐ion sublattice. Based on these quantified features, the high‐throughput screening identifies many new structures as fast Li‐ion conductors, which are further confirmed by ab initio molecular dynamics simulations. This study provides new insights and a systematic quantitative understanding of the crystal structural frameworks of fast ion‐conductor materials and motivates future experimental and computational studies on new fast‐ion conductors.
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