A Polyurea‐Crosslinked Gel Polymer Electrolyte for Solvation and Interphase Regulation in Lithium Metal Batteries

C Chao Fu (University of Wisconsin-Madison and National Bureau of Economic Research ,) H Huafeng Cao (College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China) H Hankun Zhang Y Yueping Wang Z Zhenhuan Zhang J Jiajie Yang (College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China) J Jianxiu Wang J Jinqiang Gao (State Key Laboratory of Powder Metallurgy) K Kefei Wang (Beijing Xiaomi Mobile Software Limit Company Beijing P. R. China) B Benhua Wang (College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China) G Gui‐Chao Kuang (College of Chemistry & Chemical Engineering State Key Laboratory of Powder Metallurgy Central South University Changsha Hunan Province China) X Xiangzhi Song (College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China) L Libao Chen (State Key Laboratory of Powder Metallurgy)

Abstract

ABSTRACT Polyurea (PUR) electrolytes offer molecular tunability, robust mechanics, and strong Li‐salt affinity for lithium metal batteries, but their application is hindered by poor solubility, uncontrolled polymerization, and unstable Li/electrolyte interfaces. Herein, we report two polyurea‐based polymerizable monomers with distinct functionalities, DPN and MPN , and construct flame‐retardant polyurea gel polymer electrolytes ( P‐DPN and P‐MPN ) through an in situ polymerization strategy. This design simultaneously addresses solubility, electrolyte leakage, and interfacial instability. Mechanistic investigations reveal that the carbonyl groups in the urea moieties coordinate with lithium ion (Li + ) to homogenize lithium deposition, while the –NH groups interact with anions to induce weakly solvated Li + structures, thereby accelerating ion transport. Meanwhile, the low HOMO energy level of the polyurea framework promotes the formation of a robust LiF/Li 3 N‐rich inorganic solid electrolyte interphase (SEI), effectively suppressing parasitic reactions and dendrite growth. As a result, the Li|| P‐MPN ||Li symmetric cell exhibits stable cycling for over 2300 h, and full cells paired with diverse cathodes (including NCM811, LCO, and LFP) exhibit outstanding cycling stability under high cathode loading and even at −20°C. This work establishes a molecular design strategy for in situ polyurea electrolytes and deepens the understanding of solvation/interphase regulation in high‐performance and safe lithium metal batteries.

Article Details

Volume / Issue Vol. 65, Issue 25
Published June 15, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

C

Chao Fu

University of Wisconsin-Madison and National Bureau of Economic Research ,

H

Huafeng Cao

College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China

H

Hankun Zhang

Y

Yueping Wang

Z

Zhenhuan Zhang

J

Jiajie Yang

College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China

J

Jianxiu Wang

J

Jinqiang Gao

State Key Laboratory of Powder Metallurgy

K

Kefei Wang

Beijing Xiaomi Mobile Software Limit Company Beijing P. R. China

B

Benhua Wang

College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China

G

Gui‐Chao Kuang

College of Chemistry & Chemical Engineering State Key Laboratory of Powder Metallurgy Central South University Changsha Hunan Province China

X

Xiangzhi Song

College of Chemistry & Chemical Engineering Central South University Changsha Hunan Province China

L

Libao Chen

State Key Laboratory of Powder Metallurgy