Asymmetric Coordinated Single‐Atom Catalysts Offering Zero‐Order Sulfur Redox Kinetics for High Performance Li–S Batteries

X Xianghua Kong (Anhui Province Key Laboratory of Value-Added Catalytic Conversion and Reaction Engineering, School of Chemistry and Chemical Engineering) Y Yifan Li G Guolei Cai (Hefei National Laboratory for Physical Sciences at the Microscale, CAS Key Laboratory of Materials for Energy Conversion, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry) W Wenchao Liu J Junjie Xu (Department of Biophysics, University of Texas Southwestern Medical Center) C Chuanfeng Liu G Guikai Zhang (Beijing Synchrotron Radiation Facility) Y Yilin Wang Z Zhiyu Lu (Hefei National Research Center for Physical Sciences at the Microscale, Department of Materials Science and Engineering) J Jing Zhang X Xiaojun Wu D Dawei Zhang (State Key Laboratory of Petroleum Molecular & Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering) H Hao Luo S Song Jin (Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry) H Hengxing Ji (Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry)

Abstract

Abstract Accelerating the sluggish sulfur redox kinetics through electrocatalysis has been regarded as one of the key factors to achieve Li–S batteries of cell‐level energy densities exceeding 600 Wh kg −1 . Though single‐atom catalysts (SACs), typically with symmetric M‐N 4 coordination structures have demonstrated attractive electrocatalytic performance in Li–S batteries, herein we discovered that an asymmetric‐coordinated metal center distinctly shifts sulfur redox reaction (SRR) kinetics—from first‐order (concentration‐dependent) behavior in the symmetric‐coordinated SACs—to zero‐order (surface‐saturated) kinetics, highlighting fundamentally altered reaction pathways, leading to a concurrent polysulfide conversion. Experimental and theoretical studies on the Ni atom‐based SACs showed that symmetry breaking raises the Ni d‐band center, enabling a monodentate‐to‐bidentate Li 2 S 4 adsorption transition, which strengthens polysulfide adsorption and shifts the rate‐limiting step from sluggish solid‐solid transformation (Li 2 S 2 → Li 2 S) to a more favorable liquid–solid conversion (Li 2 S 4 → Li 2 S 2 ), effectively lowering the overall energy barrier of the SRR process. Consequently, Li–S cells employing Ni‐NPG, a SACs with asymmetric Ni‐N 3 P 1 coordination, achieved a specific capacity of 877 mAh g −1 at 4 C. Even under a high sulfur loading of 6 mg cm −2 , the cell retained 92% of its capacity after 200 cycles at 0.2 C, outperforming conventional SACs with symmetric coordination structures.

Article Details

Volume / Issue Vol. 64, Issue 37
Published September 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (15)

X

Xianghua Kong

Anhui Province Key Laboratory of Value-Added Catalytic Conversion and Reaction Engineering, School of Chemistry and Chemical Engineering

Y

Yifan Li

G

Guolei Cai

Hefei National Laboratory for Physical Sciences at the Microscale, CAS Key Laboratory of Materials for Energy Conversion, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry

W

Wenchao Liu

J

Junjie Xu

Department of Biophysics, University of Texas Southwestern Medical Center

C

Chuanfeng Liu

G

Guikai Zhang

Beijing Synchrotron Radiation Facility

Y

Yilin Wang

Z

Zhiyu Lu

Hefei National Research Center for Physical Sciences at the Microscale, Department of Materials Science and Engineering

J

Jing Zhang

X

Xiaojun Wu

D

Dawei Zhang

State Key Laboratory of Petroleum Molecular & Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering

H

Hao Luo

S

Song Jin

Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry

H

Hengxing Ji

Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Applied Chemistry