材料科学
离子电导率
卤化物
化学物理
快离子导体
离子键合
单斜晶系
离子
晶体结构
电解质
从头算
Crystal(编程语言)
氧化物
结晶学
从头算量子化学方法
溴化物
钙钛矿(结构)
相(物质)
热传导
塑料晶体
电导率
晶体工程
无机化学
物理化学
作者
Jinying Xiong,Lei Su,Kangzhe Yu,Yin Tan,Hao Tang,Zhaozhe Yu,Bingbing Tian
摘要
ABSTRACT Halide solid‐state electrolytes (SSEs) have emerged as promising candidates owing to their excellent chemical oxidation stability, mechanical deformability, and good compatibility with oxide cathode materials. However, studies on the correlation between ionic conductivity and structural characteristics remain limited. Here, we introduce equivalent state halide anions bromide (Br − ) into the Li 3 YbCl 6 matrix through mechanical chemistry and heat treatment, and report the dynamic evolution of the crystal structure of Li 3 YbCl 6‐x Br x (0 ≤ x ≤ 6). The significant change in the anion sublattice framework leads to the transformation of the initial hexagonal close‐packed arrangement of Li 3 YbCl 6 (space group: Pnma ) to the cubic close‐packed arrangement of Li 3 YbCl 6‐x Br x (1 ≤ x ≤ 6) (space group: C2/m ). Ab initio molecular dynamics (AIMD) and nudged elastic band (NEB) simulations investigate that within the highly symmetric monoclinic crystal system, the ion transport path along the c ‐axis changes from the octahedron‐octahedron configuration to the octahedron‐tetrahedron‐octahedron configuration. This transformation effectively mitigates c ‐axis blockage caused by Li/Yb co‐occupation and significantly enhances lithium‐ion transport within the lattice. The results of this work highlight the complex relationship between structure and ionic transport mechanism and provide valuable insights into the ionic conduction mechanism of this class of halide electrolytes.
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