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张洪涛课题组 陈永胜课题组 | ANGEWANDTE CHEMIE-INTERNATIONAL EDITION

发布人:    发布时间:2024/04/22   浏览次数:

Long-cycling and High-voltage Solid State Lithium Metal Batteries Enabled by Fluorinated and Crosslinked Polyether Electrolytes


By

Zhu, J (Zhu, Jie) [1] , [2] , [4] ; Zhao, RQ (Zhao, Ruiqi) [1] , [2] , [4] ; Zhang, JP (Zhang, Jinping) [1] , [2] , [4] ; Song, XC (Song, Xingchen) [1] , [2] , [4] ; Liu, J (Liu, Jie) [1] , [2] , [4] ; Xu, N (Xu, Nuo) [1] , [2] , [4] ; Zhang, HT (Zhang, Hongtao) [1] , [2] , [4] ; Wan, XJ (Wan, Xiangjian) [1] , [2] , [3] , [4] ; Ji, XY (Ji, Xinyi) [5] ; Ma, YF (Ma, Yanfeng) [1] , [2] , [4] ; Li, CX (Li, Chenxi) [1] , [2] , [4] ; Chen, YS (Chen, Yongsheng) [1] , [2] , [3] , [4]

Source

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION

DOI

10.1002/anie.202400303

Early Access

MAR 2024

Indexed

2024-04-17

Document Type

Article; Early Access

Abstract

Solid-state lithium metal batteries (LMBs), constructed through the in situ fabrication of polymer electrolytes, are considered a critical strategy for the next-generation battery systems with high energy density and enhanced safety. However, the constrained oxidation stability of polymers, such as the extensively utilized polyethers, limits their applications in high-voltage batteries and further energy density improvements. Herein, an in situ fabricated fluorinated and crosslinked polyether-based gel polymer electrolyte, FGPE, is presented, exhibiting a high oxidation potential (5.1 V). The fluorinated polyether significantly improves compatibility with both lithium metal and high-voltage cathode, attributed to the electron-withdrawing -CF3 group and the generated LiF-rich electrolyte/electrode interphase. Consequently, the solid-state Li||LiNi0.6Co0.2Mn0.2O2 batteries employing FGPE demonstrate exceptional cycling performances of 1000 cycles with 78 % retention, representing one of the best results ever reported for polymer electrolytes. Moreover, FGPE enables batteries to operate at 4.7 V, realizing the highest operating voltage of polyether-based batteries to date. Notably, our designed in situ FGPE provides the solid-state batteries with exceptional cycling stability even at practical conditions, including high cathode loading (21 mg cm-2) and industry-level 18650-type cylindrical cells (1.3 Ah, 500 cycles). This work provides critical insights into the development of oxidation-stable polymer electrolytes and the advancement of practical high-voltage LMBs.

A fluorinated and crosslinked polyether electrolyte (FGPE) exhibiting excellent oxidation stability was developed, which enabled the polymer electrolyte-based Li||LiNi0.6Co0.2Mn0.2O2 batteries to achieve the longest cycling of 1000 cycles and high operating voltage of 4.7 V. Notably, solid-state industry-level 18650 cylindrical cells were first reported with an outstanding stability (500 cycles).