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Unlocking Ultra-Long Cycling Stability in Fluorophosphate Cathodes via Electrostatic Interaction Regulation and
Zengrong Mao1, Jiarui Lin1, Rui Jiang1
1School of Materials and Energy, Guangdong University of Technology, Guangzhou, Guangdong, China.
Abstract:
Polyanionic Na3(VO)2(PO4)2F is a promising cathode for sodium-ion batteries (SIBs) due to its stable structural framework and high operating voltage. However, its practical application is hindered by low electronic conductivity and sluggish Na+ diffusion kinetics, which originate from the strong Coulombic attraction between Na+ and the framework anions, and the Na+-Na+ repulsion. In this study, we propose a novel anion engineering strategy involving simultaneous Br doping and Na vacancy. Theoretical and experimental analyses reveal that the partial substitution of O2- with less electronegative Br- induces local charge redistribution, which enhances V 3d─O 2p orbital hybridization and strengthens V─O covalent bonds, improving structural stability and narrowing bandgap. The resulting charge compensation creates sodium vacancies that alleviate electrostatic repulsion among Na+ ions, facilitating Na+ diffusion. Moreover, Br doping expands interlayer spacing and mitigates charge transfer resistance. Consequently, the electrode exhibits exceptional long-term cyclability (62.07 mAh g-1 after 90,000 cycles at 20 C) and superior rate capability (85.93 mAh g-1 at 100 C). The full cell paired with a hard carbon achieves high energy density and excellent cycling stability. This work provides a feasible and effective anionic doping approach for designing long-life SIBs.
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