Theoretical Screening and Structural Optimization of High‐Performing Li <sub>2</sub> S/Alkaline‐Earth Metal Sulfides Cathodes for Advanced Anode‐Free Li−S Batteries

T Tong Wang J Jiang Zhong (College of Chemistry and Chemical Engineering Hunan University Changsha China) X Xiaobin He (College of Chemistry and Materials Engineering Wenzhou University Wenzhou China) Z Zenan Zhao (School of Materials Science and Engineering Beijing Institute of Technology Beijing China) T Tinglu Song (Experimental Center of Advanced Materials, School of Materials Science and Engineering) J Junfan Zhang (School of Materials Science and Engineering Beijing Institute of Technology Beijing China) Y Yufeng Luo C Chang‐Jiang Yao (School of Mechatronical Engineering Beijing Institute of Technology Beijing China) W Weiyou Yang Y Yifei Yuan (College of Chemistry and Materials Engineering) F Feng Wu (Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering) G Guoqiang Tan (School of Materials Science and Engineering Beijing Institute of Technology Beijing China)

Abstract

ABSTRACT Anode‐fre Li−S batteries can achieve extremely high energy density and excellent intrinsic safety by circumventing the direct use of metallic Li. However, the actual output performance is largely constrained by sluggish reaction kinetics and severe structural deterioration of Li 2 S cathode. Here, we report an anchor‐encapsulated nanostructure cooperated with alkaline‐earth metal sulfides’ catalysis to promote Li 2 S kinetics and simultaneously stabilize sulfur species. DFT calculations are first implemented to screen out an optimized MgS electrocatalyst, then a synthetic paradigm of metallothermic‐sulfidation‐carbonization via burning LiMg alloy in CS 2 vapor is proposed to in situ construct Li 2 S‐MgS@graphene nanocapsules. Systematic studies reveal its integrated anchor‐encapsulated structure and synergistic physicochemical interactions among three key components: robust C−S bonding facilitates fast electron/ion transport and stable interface, compact graphene encapsulation alleviates volume change and electrolyte's erosion, and symbiotic MgS bears excellent electrocatalytic effect on Li 2 S dissociation, greatly reducing activation barrier. Owing to the improvement on electrical, catalytic and volumetric properties, this cathode design enables promising electrochemical performance. It demonstrates a great potential for anode‐free Li−S battery and Li 2 S‐MgS@graphene//Cu cell exhibits 823 mAh g −1 initial specific capacity and 73% capacity retention after 100 cycles. Findings in this work are expected to spark a promising direction for designing high‐performing anode‐free batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 17, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

T

Tong Wang

J

Jiang Zhong

College of Chemistry and Chemical Engineering Hunan University Changsha China

X

Xiaobin He

College of Chemistry and Materials Engineering Wenzhou University Wenzhou China

Z

Zenan Zhao

School of Materials Science and Engineering Beijing Institute of Technology Beijing China

T

Tinglu Song

Experimental Center of Advanced Materials, School of Materials Science and Engineering

J

Junfan Zhang

School of Materials Science and Engineering Beijing Institute of Technology Beijing China

Y

Yufeng Luo

C

Chang‐Jiang Yao

School of Mechatronical Engineering Beijing Institute of Technology Beijing China

W

Weiyou Yang

Y

Yifei Yuan

College of Chemistry and Materials Engineering

F

Feng Wu

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering

G

Guoqiang Tan

School of Materials Science and Engineering Beijing Institute of Technology Beijing China