电解质
材料科学
化学工程
电化学
锂(药物)
聚合物
氟
聚合物电解质
相间
电极
小袋
自放电
水解
单体
电化学电池
无机化学
活力测定
纳米技术
导电聚合物
化学
硅
作者
Ziyu Peng,Jialin Lin,Xiaowei Huang,Kunyun Yan,Shijie Xu,Zi'an Wang,Yaqin Wu,Kuan Dai,Chunxiao Zhang,Weifeng Wei
标识
DOI:10.1002/anie.202522407
摘要
Wide-temperature and high-voltage environments impose unprecedented demands on electrolyte stability, where conventional systems tend to fail due to severe by-products generation and cathode-electrolyte interphase (CEI) / solid electrolyte interface (SEI) corrosion. Herein, a molecularly engineered cross-linker (pentafluorobutyl acrylate, PFPA) is proposed to achieve rapid self-repairing of CEI/SEI through sequential fluorine release. It is revealed that the grafted pentafluorophenyl groups of PFPA can suppress harmful hydrolysis preventatively and increase the Li+ transference number by implanting PF6 -, and achieve the construction and continuous self-repairing of LiF-rich CEI/SEI. As a result, the cells incorporating modified electrolytes (GPE-F) exhibit excellent electrochemical performance under a high cut-off voltage (∼4.7 V) and a wide temperature range (-20∼70°C). The NCM811||GPE-F||Li pouch cell with 403.6 Wh kg-1 delivers a high-capacity retention of 91.3% after 380 cycles, and the NCM811||GPE-F||Gr pouch cell with 265.5 Wh kg-1 can be stably cycled for over 2000 cycles. The industrial viability is further demonstrated in high-capacity (11.1 Ah), high-energy-density pouch cells (544.3 Wh kg-1). This work provides a novel and promising pathway for the development of multi-system compatible gel polymer electrolytes, particularly for their application in complex and harsh operating environments.
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