Contra‐Diffusion Engineering of Single‐Atom Catalytic Interlayers Enables Reversible Sulfur Redox Chemistry

Y Yan‐Jhang Chen (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan) T Tsung‐I. Yeh (Department of Chemical Engineering National Taiwan University of Science and Technology Taipei Taiwan) C Chia‐Yu Chang (Sustainable Electrochemical Energy Development Center (SEED Center) National Taiwan University of Science and Technology Taipei Taiwan) W Wei‐Ming Huang (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan) J Jing‐Yu Li (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan) M Mohamed Gamal Mohamed (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan) S Shiao‐Wei Kuo (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan) B Bing‐Joe Hwang (Department of Chemical Engineering National Taiwan University of Science and Technology Taipei Taiwan) Y Yun‐Sheng Ye (Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan)

Abstract

ABSTRACT Achieving durable lithium–sulfur batteries with minimal catalyst loading remains challenging, particularly for interlayer designs where catalytic efficiency is often compromised by nonuniform active‐site utilization. Here we demonstrate that diffusion‐regulated precursor growth enables the construction of atomically dispersed Co–N x catalytic sites within a freestanding aramid nanofiber‐derived carbon interlayer. By synchronizing the bidirectional diffusion of metal ions and ligands, this process enforces spatially confined nucleation and homogeneous precursor evolution, yielding a uniformly accessible single‐atom catalytic architecture while preserving the intrinsic fibrous conduction network. The resulting interlayer simultaneously enhances polysulfide anchoring, accelerates bidirectional sulfur redox kinetics, and regulates Li 2 S nucleation and dissolution, as directly revealed by in situ Raman spectroscopy and electrochemical analyses. As a consequence, the system delivers exceptional cycling stability under high‐rate operation despite a low Co loading, highlighting the importance of diffusion‐regulated catalytic architectures for efficient sulfur redox regulation in lithium–sulfur batteries.

Article Details

Volume / Issue Vol. 65, Issue 24
Published June 08, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Y

Yan‐Jhang Chen

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan

T

Tsung‐I. Yeh

Department of Chemical Engineering National Taiwan University of Science and Technology Taipei Taiwan

C

Chia‐Yu Chang

Sustainable Electrochemical Energy Development Center (SEED Center) National Taiwan University of Science and Technology Taipei Taiwan

W

Wei‐Ming Huang

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan

J

Jing‐Yu Li

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan

M

Mohamed Gamal Mohamed

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan

S

Shiao‐Wei Kuo

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan

B

Bing‐Joe Hwang

Department of Chemical Engineering National Taiwan University of Science and Technology Taipei Taiwan

Y

Yun‐Sheng Ye

Department of Materials and Optoelectronic Science Center of Crystal Research National Sun Yat‐Sen University Kaohsiung Taiwan