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Self‐Enhancing Gel Polymer Electrolyte by In Situ Construction for Enabling Safe Lithium Metal Battery

Lithium metal battery (LMB) possessing a high theoretical capacity is a promising candidate of advanced energy storage devices. However, its safety and stability are challenged by lithium dendrites and the leakage of liquid electrolyte. Here, a self‐enhancing gel polymer electrolyte (GPE) is created...

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Bibliographic Details
Published in:Advanced science 2022-02, Vol.9 (4), p.e2103663-n/a
Main Authors: Chen, Dongli, Zhu, Ming, Kang, Peibin, Zhu, Tao, Yuan, Haocheng, Lan, Jinle, Yang, Xiaoping, Sui, Gang
Format: Article
Language:English
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Summary:Lithium metal battery (LMB) possessing a high theoretical capacity is a promising candidate of advanced energy storage devices. However, its safety and stability are challenged by lithium dendrites and the leakage of liquid electrolyte. Here, a self‐enhancing gel polymer electrolyte (GPE) is created by in situ polymerizing 1,3‐dioxolane (DOL) in the nanofibrous skeleton for enabling safe LMB. The nanofiber membrane possesses a better affinity with poly‐DOL (PDOL) than commercial separator for constructing homogeneous GPE with enhanced ion conductivity. Furthermore, polydopamine is introduced on nanofiber membrane to form hydrogen bonding with PDOL and bis((trifluoromethyl)sulfonyl)imide anion, dramatically improving the mechanical strength, ionic conductivity, and transference number of GPE. Besides, molecular dynamic simulation is used to reveal the intrinsic factors of high ionic conductivity and reinforcing effect in the meantime. Consequently, the LiFePO4//Li batteries using self‐enhancing GPE show extraordinary cyclic stability over 800 cycles under high current density of 2 C, with a capacity decay of 0.021% per cycle, effectively suppressing the growth of lithium dendrites. This ingenious strategy is expected to manufacture advanced performance and high safety LMBs and compatible with the current battery production. A self‐enhancing gel polymer electrolyte (GPE) based on in situ construction display favorable mechanical strength (10.1 MPa), high ionic conductivity (2.39 × 10−3 S cm−1), and Li+ transference number (0.59). The GPE shows extraordinary cyclic stability over 800 cycles at 2 C and effective suppression of Li dendrites.
ISSN:2198-3844
2198-3844
DOI:10.1002/advs.202103663