Synergistic Regulation of Multi‐Interface Chemistry by Functional Carbon Dots for High‐Performance Composite Solid Electrolytes

H Huaxin Liu F Fangjun Zhu (State Key Laboratory of Powder Metallurgy, College of Chemistry and Chemical Engineering Central South University Changsha 410083 China) Y Yinghao Zhang Y Yuming Liu (Department of Ophthalmology, Tianjin Medical University General Hospital, International Joint Laboratory of Ocular Diseases (Ministry of Education), State Key Laboratory of Experimental Hematology, Tianjin Key Laboratory of Ocular Trauma, Laboratory of Molecular Ophthalmology, Tianjin Medical University) Y Yi Zhang W Wentao Deng (College of Chemistry and Chemical Engineering) G Guoqiang Zou (College of Chemistry and Chemical Engineering) H Hongshuai Hou (College of Chemistry and Chemical Engineering) X Xiaobo Ji (College of Chemistry and Chemical Engineering)

Abstract

Abstract Low ionic conductivity, poor mechanical strength, and unstable interface structure are still the main factors hindering the practical application of polymer solid‐state lithium metal batteries (SSLMBs). In this work, we have developed a unique composite filler (LLZTOCDs) for solid polymer electrolytes to address these challenges through synergistic regulation of multi‐interface chemistry. The LLZTOCDs is prepared via thermal treatment of N,S,F‐codoped carbon dots (NSFCDs) and Li 6.5 La 3 Zr 1.5 Ta 0.5 O 12 (LLZTO) inorganic electrolyte. Here, the detrimental Li 2 CO 3 on the LLZTO surface is converted into a fast ion‐conducting and an electron‐insulating interlayer of LiF and Li 3 N, and the carbon dots self‐assemble into a functional organophilic coating on the outermost layer, which acts as a bridge between the LLZTO and the polymer. This unique structure enhances the compatibility and ion‐exchange kinetics between the LLZTOCDs and the polymer, significantly improving the mechanical strength and Li + transport. Additionally, the oxygen vacancies formed in situ at the LLZTOCDs interface provide an anion confinement effect, increasing lithium salt dissociation, and enhancing the Li + transference number to 0.85. Therefore, the solid battery constructed with LLZTOCDs exhibits excellent electrochemical stability, long‐cycle life, and high ionic conductivity (1.96 × 10 − 4 S cm −1 at 25 °C), providing a feasible strategy for practical applications.

Article Details

Volume / Issue Vol. 64, Issue 26
Published June 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

H

Huaxin Liu

F

Fangjun Zhu

State Key Laboratory of Powder Metallurgy, College of Chemistry and Chemical Engineering Central South University Changsha 410083 China

Y

Yinghao Zhang

Y

Yuming Liu

Department of Ophthalmology, Tianjin Medical University General Hospital, International Joint Laboratory of Ocular Diseases (Ministry of Education), State Key Laboratory of Experimental Hematology, Tianjin Key Laboratory of Ocular Trauma, Laboratory of Molecular Ophthalmology, Tianjin Medical University

Y

Yi Zhang

W

Wentao Deng

College of Chemistry and Chemical Engineering

G

Guoqiang Zou

College of Chemistry and Chemical Engineering

H

Hongshuai Hou

College of Chemistry and Chemical Engineering

X

Xiaobo Ji

College of Chemistry and Chemical Engineering