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具有面心立方阴离子亚晶格的离子导体中锂离子迁移的相关因素。

Correlated factors for Li-ion migration in ionic conductors with the fcc anion sublattice.

机构信息

University of Michigan-Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.

出版信息

J Chem Phys. 2023 May 7;158(17). doi: 10.1063/5.0140110.

Abstract

The development of solid-state electrolytes (SSEs) with high lithium ionic conductivities is critical for the realization of all-solid-state Li-ion batteries. Crystal structure distortions, Li polyhedron volumes, and anion charges in SSEs are reported to affect the energy landscapes, and it is paramount to investigate their correlations. Our works uncover the cooperative effect of lithium site distortions, anion charges, and lattice volumes on Li-ion migration energy barrier in superionic conductors of LiMS2 (M = Sc, Ti, V, Cr, Mn, Fe, Co, and Ni) and Li2MO3 (M = Sc, Ti, V, Cr, Mn, Fe, Co, and Ni). Combined with the Least Absolute Shrinkage and Selection Operator analyses, the volume and Continuous symmetrical methods (CSMs) of Li tetrahedral (Tet) sites appear to have a larger effect on the manipulation of Ea for Li migration, compared to that of Li octahedral (Oct) sites, which is further confirmed by the results from the face-centered cubic (fcc) anion lattice model. For the Tet-Oct-Tet Li migration path, the CSM (the volume of Li site) has a negative (positive) correlation with Ea, while for the Oct-Tet-Oct Li migration paths, opposite correlations have been observed. The understanding of the correlation between site preference, anion charge, lattice volume, and structural distortion as well as the prediction model of Ea in terms of these three factors, namely, C-V-D model, could be useful for the design of solid-state electrolytes with lower activation energy.

摘要

固态电解质(SSEs)的高锂离子电导率的发展对于实现全固态锂离子电池至关重要。据报道,SSEs 的晶体结构变形、锂多面体体积和阴离子电荷会影响能量势垒,因此研究它们之间的相关性至关重要。我们的工作揭示了在超离子导体 LiMS2(M = Sc、Ti、V、Cr、Mn、Fe、Co 和 Ni)和 Li2MO3(M = Sc、Ti、V、Cr、Mn、Fe、Co 和 Ni)中,锂位变形、阴离子电荷和晶格体积对锂离子迁移能垒的协同影响。结合最小绝对收缩和选择算子分析,与八面体(Oct)位点相比,四面体(Tet)位点的体积和连续对称方法(CSMs)似乎对锂离子迁移的 Ea 具有更大的影响,这进一步得到了面心立方(fcc)阴离子晶格模型结果的证实。对于 Tet-Oct-Tet Li 迁移路径,CSM(Li 位体积)与 Ea 呈负相关,而对于 Oct-Tet-Oct Li 迁移路径,则观察到相反的相关性。了解这些因素(即 C-V-D 模型)之间的位置偏好、阴离子电荷、晶格体积和结构变形之间的相关性以及 Ea 的预测模型,对于设计具有更低激活能的固态电解质可能是有用的。

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