中子衍射
离子
亚稳态
材料科学
晶格能
中子散射
组态熵
离子键合
从头算
快离子导体
格子(音乐)
晶体结构
化学物理
结晶学
散射
物理化学
热力学
化学
电解质
物理
有机化学
电极
声学
光学
作者
Pengbo Wang,Sawankumar V. Patel,Haoyu Liu,Po‐Hsiu Chien,Xuyong Feng,Lina Gao,Benjamin Chen,Jue Liu,Yan‐Yan Hu
标识
DOI:10.1002/adfm.202307954
摘要
Abstract The correlation between lattice chemistry and cation migration in high‐entropy Li + conductors is not fully understood due to challenges in characterizing anion disorder. To address this issue, argyrodite family of Li + conductors, which enables structural engineering of the anion lattice, is investigated. Specifically, new argyrodites, Li 5.3 PS 4.3 Cl 1.7− x Br x (0 ≤ x ≤ 1.7), with varying anion entropy are synthesized and X‐ray diffraction, neutron scattering, and multinuclear high‐resolution solid‐state nuclear magnetic resonance (NMR) are used to determine the resulting structures. Ion and lattice dynamics are determined using variable‐temperature multinuclear NMR relaxometry and maximum entropy method analysis of neutron scattering, aided by constrained ab initio molecular dynamics calculations. 15 atomic configurations of anion arrangements are identified, producing a wide range of local lattice dynamics. High entropy in the lattice structure, composition, and dynamics stabilize otherwise metastable Li‐deficient structures and flatten the energy landscape for cation migration. This resulted in the highest room‐temperature ionic conductivity of 26 mS cm −1 and a low activation energy of 0.155 eV realized in Li 5.3 PS 4.3 Cl 0.7 Br, where anion disorder is maximized. This study sheds light on the complex structure–property relationships of high‐entropy superionic conductors, highlighting the significance of heterogeneity in lattice dynamics.
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