High‐Spin Cobalt Enables Strong Metal‐Sulfur Orbital Hybridization for Accelerated Polysulfide Conversion in Lithium‐Sulfur Batteries

J Jiayi Wang X Xiaomin Zhang (State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials)) J Jiabing Liu (Power Battery and Systems Research Center State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences Dalian 116023 P.R. China) X Xingbo Wang Y Yihang Nie (Institute of Carbon Neutrality Zhejiang Wanli University Ningbo China) K Kai Zong (Institute of Carbon Neutrality Zhejiang Wanli University Ningbo 315100 China) X Xiaoyu Zhang C Chengjiao Zhao (Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou 510006 China) L Lin Yang X Xin Wang Z Zhongwei Chen (Power Battery & Systems Research Center, State Key Laboratory of Catalysis)

Abstract

Abstract The development of electrocatalysts to mitigate polysulfide shuttling and enhance the kinetics of sulfur species conversion is pivotal for the advancement of lithium‐sulfur (Li‐S) batteries. In this study, the fabrication of porous, undercoordinated titanium dioxide nanosheets adorned with high‐spin state cobalt atoms (HSCo/TiO 2‐x ) as efficient electrocatalysts is presented. The undercoordinated TiO 2‐x nanosheets provide a profusion of edge active sites conducive to Co atom attachment, firmly embedded within the lattice structure, thereby ensuring heightened structural stability throughout repetitive cycling processes. Furthermore, the high‐spin state Co atoms contribute abundant unpaired electrons, occupying distinct 3d orbitals. This configuration facilitates electron transfer and orbital hybridization upon interaction with polysulfides, leading to suppressed shutting effect and enhanced polysulfide conversion kinetics. Consequently, the Li‐S cell equipped with an HSCo/TiO 2‐x modified separator exhibits an impressive capacity of 8.05 mAh cm −2 under elevated sulfur loading of 10.9 mg cm −2 . Additionally, the fabricated Li‐S pouch cell delivers a substantial initial discharge capacity of 0.47 Ah with a high energy density of 379.3 Wh kg −1 . This study serves as a valuable reference for exploring the intricate relationship between spin state regulation and electrochemical performance, and holds great promise for the design of highly efficient future electrocatalysts.

Article Details

Volume / Issue Vol. 37, Issue 30
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

J

Jiayi Wang

X

Xiaomin Zhang

State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials)

J

Jiabing Liu

Power Battery and Systems Research Center State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences Dalian 116023 P.R. China

X

Xingbo Wang

Y

Yihang Nie

Institute of Carbon Neutrality Zhejiang Wanli University Ningbo China

K

Kai Zong

Institute of Carbon Neutrality Zhejiang Wanli University Ningbo 315100 China

X

Xiaoyu Zhang

C

Chengjiao Zhao

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou 510006 China

L

Lin Yang

X

Xin Wang

Z

Zhongwei Chen

Power Battery & Systems Research Center, State Key Laboratory of Catalysis