The solid electrolyte Li2ZrCl6 has attracted significant attention due to its low cost and good compatibility with high-voltage cathode materials. Although it exhibits considerable ionic conductivity at room temperature, it still falls short of the requirements for widespread application. Doping has proven effective in enhancing the ionic conductivity of Li2ZrCl6. In this work, the potential of Li2.5Zr0.75Zn0.25Cl6, Li2.25Zr0.75Ga0.25Cl6, and Li2Zr0.75Ge0.25Cl6 as solid electrolytes is investigated using density functional theory and ab initio molecular dynamics simulations based on first principles, with the doping-induced enhancement mechanism analyzed at the atomic scale. Moreover, the electrochemical window and phase stability of these materials are examined by using the Pymatgen tool. Results indicate that the nature of the dopant and a lithium-rich strategy are key factors influencing the Li+ conductivity of Li2.25Zr0.75Ga0.25Cl6. Compared to pristine Li2ZrCl6, Li2.25Zr0.75Ga0.25Cl6 shows significantly improved ionic conductivity, attributed to a reduced migration energy barrier and additional migration pathways in the ab plane. Furthermore, more isosurfaces at the interface suggest that Ga3+ incorporation enhances Li+ conduction between Li2ZrCl6 and Li2S. This study provides a microscopic understanding of how elemental doping improves ion transport, contributing to the development of advanced solid electrolytes and all-solid-state batteries.
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Yao Wu
Yi Liu
Xiao Huang
Inorganic Chemistry
Nanchang University
Lithium Power (United States)
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Wu et al. (Thu,) studied this question.
www.synapsesocial.com/papers/69a75cfbc6e9836116a264fc — DOI: https://doi.org/10.1021/acs.inorgchem.5c04863