DOE OSTI · 2483386
Tuning collective anion motion enables superionic conductivity in solid-state halide electrolytes
Abstract
Halides of the family Li 3 MX 6 (M = Y, In, Sc and so on, X = halogen) are emerging solid electrolyte materials for all-solid-state Li-ion batteries. They show greater chemical stability and wider electrochemical stability windows than existing sulfide solid electrolytes, but have lower room-temperature ionic conductivities. Here, in this work, we report the discovery that the superionic transition in Li 3 YCl 6 is triggered by the collective motion of anions, as evidenced by synchrotron X-ray and neutron scattering characterizations and ab initio molecular dynamics simulations. Based on this finding, we used a rational design strategy to lower the transition temperature and thus improve the room-temperature ionic conductivity of this family of compounds. We accordingly synthesized Li 3 YCl x Br 6-x and Li 3 GdCl 3 Br 3 and achieved very high room-temperature conductivities of 6.1 and 11 mS cm -1 for Li 3 YCl 4.5 Br 1.5 and Li 3 GdCl 3 Br 3 , respectively. These findings open new routes to the design of room-temperature superionic conductors for high-performance solid batteries.
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Liu, Zhantao, Chien, Po-Hsiu, Wang, Shuo, Song, Shaowei, Lu, Mu, Chen, Shuo, Xia, Shuman, Liu, Jue, Mo, Yifei, Chen, Hailong. 2024-09-23. Tuning collective anion motion enables superionic conductivity in solid-state halide electrolytes. https://doi.org/10.1038/s41557-024-01634-6
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