Regeneration of Slightly Deteriorated LiPF 6 -Based Electrolyte by Dual Additive Engineering to Achieve High-Safety and High-Electrochemical Performance Batteries

电解质 材料科学 电化学 化学工程 阴极 氧化物 储能 电极 燃烧 电池(电) 锂(药物) 高能 降级(电信) 比能量 导电体 电导率 离子电导率
作者
Yinong Wang,Feilong Zhang,Junlong Zhu,Jie Wang,Linhu Song,Jinlong Sun,Lijuan Wang,Zhengli Hua,Mengya Wang,Yin Quan,Junfei Zhou,Junwei Zhang,Yanjun Zhao,Yijie Yao,Yu Zhu,Xiaoling Cui,Dongni Zhao,Shiyou Li
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (50): 67793-67801 被引量:2
标识
DOI:10.1021/acsami.5c15670
摘要

LiPF 6 -based electrolyte is widely used in lithium-ion batteries (LIBs) due to its excellent electrochemical performance. However, in improper operation (such as exposure to high-temperature environments), deterioration is inevitable, leading to a deterioration of the battery performance and posing safety hazards. Herein, 5 wt % ethoxy(pentafluorocyclotriphosphazene) (PFPN) and 1 wt % tris(trimethylsilyl)borate (TMSB) are introduced as dual additives to achieve the regeneration of the slightly deteriorated LiPF 6 -based electrolyte. Both of them demonstrate excellent capture capabilities for HF and H 2 O, reducing the contents of HF and H 2 O in the deteriorated electrolyte to meet the basic requirements of LIBs. After employing it to Li-rich layered oxide (LRLO)/Li cells with high energy density, the regenerated electrolyte shows excellent compatibility with the LRLO cathode, which is mainly attributed to three aspects. (1) TMSB additives help construct a stable and conductive cathode electrolyte interface (CEI) film rich in inorganic components via the in situ formation of lithium difluorophosphate (LiDFP) additives, thereby improving the cycling stability and tolerance to high temperature. (2) PFPN additives terminate the chain reaction triggered by the combustion radicals at high temperatures, enhancing the flame retardancy of electrolytes. (3) Dual additives significantly suppress the gas production of the battery, enhancing the safety of LIBs. As a result, the regenerated electrolyte demonstrate superior electrochemical performances compared to fresh electrolytes reported in the literature, especially at a high temperature of 55 °C (0.2 C, 67.2% capacity retention after 200 cycles). This work not only proposes a simple and easy-to-implement electrolyte regeneration strategy but also proposes an effective strategy for the development of electrolyte systems demonstrating high compatibility with lithium-rich layered oxide (LRLO) cathodes, a factor that is critically important for advancing lithium-ion batteries with enhanced energy density.
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