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优化硫银锗矿中的离子传输:关于硫/卤化物分布及局部环境作用的统一观点

Optimizing ionic transport in argyrodites: a unified view on the role of sulfur/halide distribution and local environments.

作者信息

Lavrinenko Anastasia K, Famprikis Theodosios, Quirk James A, Landgraf Victor, Groszewicz Pedro B, Heringa Jouke R, Smeets Stef, Azizi Victor, Ciarella Simone, Dawson James A, Wagemaker Marnix, Vasileiadis Alexandros

机构信息

Storage of Electrochemical Energy, Department of Radiation Science and Technology, Faculty of Applied Sciences, Delft University of Technology Mekelweg 15 2629JB Delft The Netherlands

Chemistry - School of Natural and Environmental Sciences, Newcastle University Newcastle upon Tyne NE1 7RU UK.

出版信息

J Mater Chem A Mater. 2024 Sep 9;12(39):26596-26611. doi: 10.1039/d4ta04628e. eCollection 2024 Oct 8.

Abstract

Understanding diffusion mechanisms in solid electrolytes is crucial for advancing solid-state battery technologies. This study investigates the role of structural disorder in Li PS Br argyrodites using molecular dynamics, focusing on the correlation between key structural descriptors and Li-ion conductivity. Commonly suggested parameters, such as configurational entropy, bromide site occupancy, and bromine content, correlate with Li-ion diffusivity but do not consistently explain conductivity trends. We find that a uniform distribution of bromine and sulfur ions across the 4a and 4d sublattices is critical for achieving high conductivity by facilitating optimal lithium jump activation energies, anion-lithium distances, and charge distribution. Additionally, we introduce the ionic potential as a simple descriptor that predicts argyrodite conductivity by assessing the interaction strength between cations and anions. By analyzing the correlation between ionic potential and conductivity for a range of argyrodite compositions published over the past decade, we demonstrate its broad applicability. Minimizing and equalizing ionic potentials across both sublattices enhances conductivity by reducing the strength of anion-lithium interactions. Our analysis of local environments coordinating Li jumps reveals that balancing high and low-energy pathways is crucial for enabling macroscopic diffusion, supported by investigating percolating pathways. This study highlights the significance of the anionic framework in lithium mobility and informs the design of solid electrolytes for improved energy storage systems.

摘要

了解固体电解质中的扩散机制对于推动固态电池技术至关重要。本研究使用分子动力学研究了结构无序在Li PS Br硫银锗矿中的作用,重点关注关键结构描述符与锂离子电导率之间的相关性。通常提出的参数,如构型熵、溴化物位点占有率和溴含量,与锂离子扩散率相关,但并不能始终如一地解释电导率趋势。我们发现,溴和硫离子在4a和4d亚晶格上的均匀分布对于通过促进最佳锂跳跃活化能、阴离子-锂距离和电荷分布来实现高电导率至关重要。此外,我们引入离子势作为一个简单的描述符,通过评估阳离子和阴离子之间的相互作用强度来预测硫银锗矿的电导率。通过分析过去十年发表的一系列硫银锗矿组成的离子势与电导率之间的相关性,我们证明了其广泛的适用性。通过降低阴离子-锂相互作用的强度,使两个亚晶格上的离子势最小化并使其均衡,可以提高电导率。我们对协调锂跳跃的局部环境的分析表明,平衡高能和低能路径对于实现宏观扩散至关重要,这一点通过研究渗流路径得到了支持。本研究突出了阴离子框架在锂迁移率中的重要性,并为改进储能系统的固体电解质设计提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6952/11403572/881c18031233/d4ta04628e-f1.jpg

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