化学
钠
债券
材料科学
计算机科学
离子
业务
有机化学
财务
作者
Yongsheng Huang,Qingqing Zhang,Xiao‐Guang Sun,Kai Liu,Weili Sun,Mingyu Zhi,Yayu Guo,Shijian Zheng,Sheng Dai
标识
DOI:10.1002/anie.202406277
摘要
Abstract Sodium‐ion batteries (SIBs) have garnered significant interest as one of the most promising energy suppliers for power grid energy storage. However, the poor electrode/electrolyte interfacial stability leads to continual electrolyte decomposition and transition metal dissolution, resulting in rapid performance degradation of SIBs. In this work, we propose a strategy integrating multiple functional bonds to regulate electrode/electrolyte interphase by triple‐coupling of succinonitrile (SN), sodium hexafluorophosphate (NaPF 6 ) and fluorinated ethylene carbonate (FEC). Theoretical calculation and experiment results show that the solvation structure of Na + and ClO 4 − is effectively reconfigured by the solvated FEC, SN and PF 6 − in PC‐based carbonate electrolyte. The newly developed electrolyte demonstrates increased Na + ‐FEC coordination, weakened interaction of Na + ‐PC and participation of SN and PF 6 − anions in solvation, resulting in the formation of a conformal interfacial layer comprising of sodium oxynitrides (NaN x O y ), sodium fluoride (NaF) and phosphorus oxide compounds (NaP x O y ). Consequently, a 3 Ah pouch full cell of hard carbon//NaNi 1/3 Fe 1/3 Mn 1/3 O 2 exhibits an excellent capacity retention of 90.4 % after 1000 cycles. Detailed postmortem analysis of interface chemistry is further illustrated by multiple characterization methods. This study provides a new avenue for developing electrolyte formulations with multiple functional bonds integrated interphases to significantly improve the long‐term cycling stability of SIBs.
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