Poly(benzoxazine)‐Based Gel Polymer Electrolytes for Lithium Metal Batteries With Ultralong Lifespans

Y Ye Jiang S Shangquan Zhao (Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China) X Xinyu Xiao (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) J Jiaqi Pi (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) Y Youliang Wang (School of Chemistry and Chemical Engineering Nanchang University Nanchang 330031 China) N Nan Yi L Lijia Zou (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) Z Zixiao Xu (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) Y Yanhe Xiao (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) X Xin Ao (Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China) G Guangni Ding (Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China) W Weihua Zhou N Naigen Zhou (Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China) Z Zhigang Xue (School of Chemistry and Chemical Engineering)

Abstract

Abstract Gel polymer electrolyte (GPE) is a desirable candidate for high‐safety lithium batteries but is still plagued by the dynamic fluctuations of liquid electrolyte components, which induce localized fluid aggregation or leakage, ultimately leading to performance instability or even degradation. Here, we develop a novel poly(benzoxazine‐propylene‐oxide)‐based GPE, achieving superior electrochemical performance and high safety simultaneously. Through molecular architecture design, the strategic incorporation of long‐chain propylene‐oxide segments and amide functionalities into the benzoxazine backbone endows the polymer matrix with enhanced lithium‐ion transport capability. Catalyst‐free thermal curing triggers oxazine ring‐opening polymerization, constructing three‐dimensional chemically cross‐linked network architecture, generating abundant hydrogen bonds. The synergistic interaction between chemical crosslinking and dynamic hydrogen‐bonding enabled exceptional electrolyte uptake (600% w/w within 5 min) coupled with effective solvent immobilization. The incorporated long‐chain propylene‐oxide segments exhibited synergistic solvation effects with carbonate solvents, enabling superior ionic conductivity (9.62 mS cm −1 at 20 °C). The Li||Li symmetric cells based on PBz‐PO‐GPE 2000 operated for 3000 h at 0.1 mA cm −2 , and LiFePO 4 ||Li full cells delivered 140.7 mAh g −1 initial discharge capacity at 2 C rate, near‐unity coulombic efficiency, and 70.5% capacity retention after 1800 cycles. This multiscale design of GPE provides an effective strategy for electrolyte exploration in high‐performance lithium metal batteries.

Article Details

Volume / Issue Vol. 64, Issue 42
Published October 13, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Y

Ye Jiang

S

Shangquan Zhao

Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China

X

Xinyu Xiao

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

J

Jiaqi Pi

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

Y

Youliang Wang

School of Chemistry and Chemical Engineering Nanchang University Nanchang 330031 China

N

Nan Yi

L

Lijia Zou

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

Z

Zixiao Xu

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

Y

Yanhe Xiao

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

X

Xin Ao

Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China

G

Guangni Ding

Jiangxi Province Key Laboratory of Lithium‐ion Battery Materials and Application School of Physics and Material Science Nanchang University Nanchang 330031 China

W

Weihua Zhou

N

Naigen Zhou

Department of Materials Science and Engineering School of Physics and Materials Science Nanchang University Nanchang 330031 China

Z

Zhigang Xue

School of Chemistry and Chemical Engineering