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Published on: May 17, 2024
Rational Defect and Fluorine Chemistry in Tin Oxide Enables Reversible Na Intercalation with a Stable NaF-Rich SEI
Pinxian Jiang1, Mohamed Ait Tamerd1, Wei-Hsiang Huang2,3
1Shanghai Key Laboratory for R&D and Application of Metallic Functional Materials, Institute of New Energy for Vehicles, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, China.
Abstract:
Significant efforts have been devoted to optimizing the morphology and synthesizing composite materials to activate SnO2 for sodium-ion batteries. However, challenges arising from its intrinsic crystal structure remain insufficiently addressed. This study aims to introduce both oxygen vacancies and fluorine ions into the SnO2 lattice, yielding a modified compound with a chemical composition of SnO1.74£0.16F0.1. Notably, SnO1.74£0.16F0.1 anode exhibits an enhanced discharge capacity and improved cycling stability. These enhancements are attributed to the accelerated Na+ diffusion and increased electrochemical activity, as confirmed by kinetics investigations and in situ X-ray diffraction (XRD) characterizations. Furthermore, cryogenic transmission electron microscopy (cryo-TEM) analyses reveal that the coexistence of oxygen vacancies and fluorine anions promotes the formation of a NaF-rich solid electrolyte interface (SEI) layer, showing an excellent compatibility in sodium-ion batteries, which holds prospects for the realization of the next generation of energy storage systems.
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