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Solid-state batteries are attractive energy storage systems as a result of their inherent safety, but their development hinges on advanced solid-state electrolytes (SSEs). Most SSEs remain largely confined to single-anion systems (e.g., sulfides, oxides, halides, and polymers). Through mixed-anion design strategy, we develop crystalline Li3Ta3O4Cl10(LTOC) and its derivatives with excellent ionic conductivities (up to 13.7 millisiemens per centimeter at 25°C) and electrochemical stability. The LTOC structure features mixed-anion spiral chains, consisting of corner-shared oxygen and terminal chlorine atoms, which induces continuous “tetrahedron-tetrahedron” Li-ion migration pathways with low energy barriers. Additionally, LTOC demonstrates holistic cathode compatibility, enabling solid-state batteries operation at 4.9 volts versus Li/Li+and low temperature, down to −50°C. These findings describe a promising class of superionic conductors for high-performance solid-state batteries.more » « lessFree, publicly-accessible full text available October 9, 2026
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Huang, Yining; Wan, Hong; Chen, Xi (, Proceedings of the 2023 Winter Simulation Conference)Corlu, C G; Hunter, S R; Lam, H; Onggo, B S; Shortle, J; Biller, B (Ed.)
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Fu, Jiamin; Wang, Shuo; Liang, Jianwen; Alahakoon, Sandamini H.; Wu, Duojie; Luo, Jing; Duan, Hui; Zhang, Shumin; Zhao, Feipeng; Li, Weihan; et al (, Journal of the American Chemical Society)
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