Heteroatom‐Modulated Asymmetric Cobalt Single‐Atom Catalysts on MOF‐Derived Carbon Enabling Durable Zinc‐Iodine Batteries

X Xiaotian Guo H Hengyue Xu (Department of Chemistry) Z Ziming Qiu (School of Chemistry and Materials Yangzhou Key Laboratory of Smart Materials and Clean Energy Interdisciplinary Research Center for Advanced Energy Yangzhou University Yangzhou P. R. China) Q Qian Li N Nana Li Z Zhangbin Yang (School of Chemistry and Chemical Engineering Yangzhou University Yangzhou Jiangsu 225002 P.R. China) W Wenting Li Y Yue Lian (School of Chemistry and Chemical Engineering Yancheng Institute of Technology Yancheng 224051 P. R. China) Q Qing Li Y Yanwei Sui (China University of Mining and Technology Xuzhou 221116 P R China) M Mohsen Shakouri (Canadian Light Source Inc., University of Saskatchewan, SK, Saskatoon S7N 2 V3, Canada) H Hsiao‐Chien Chen (Dual Master Program in Nano‐Electronic Engineering and Design, Center for Sustainability and Energy Technologies Chang Gung University Taoyuan Taiwan) Y Yizhou Zhang H Huan Pang

Abstract

Abstract The rational design of catalytic host materials with optimized electronic structures and confined architectures is crucial for addressing the shuttle effect and sluggish kinetics in aqueous zinc‐iodine batteries. In this study, an asymmetric cobalt single‐atom catalyst is developed by anchoring Co−N 3 P 1 sites on a nitrogen‐phosphorus co‐doped carbon matrix (Co−N−PC) derived from metal–organic frameworks (MOFs). The coordination engineering of Co centers via phosphorus incorporation disrupts the symmetry of conventional Co−N 4 configurations, enhancing charge redistribution and reducing the energy barrier for iodine dissociation as confirmed by density functional theory calculations. Systematic optimization reveals that moderate Co and P doping balances active sites and electronic conductivity, achieving strong chemical adsorption of polyiodides while maintaining structural stability. In situ Raman and UV–Vis spectroscopies confirm effective confinement of iodine species and reversible iodine conversion. The optimized C3/I 2 cathode exhibits exceptional cyclability, retaining a specific capacity of 100.6 mA h g −1 after 50,000 cycles at 5 A g −1 . Furthermore, practical applicability is demonstrated in flexible soft‐pack batteries and 3D‐printed/screen‐printed micro‐batteries, showing its potential for scalable energy storage. This work presents a heteroatom‐modulation strategy for designing efficient catalytic hosts in conversion‐type batteries.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

X

Xiaotian Guo

H

Hengyue Xu

Department of Chemistry

Z

Ziming Qiu

School of Chemistry and Materials Yangzhou Key Laboratory of Smart Materials and Clean Energy Interdisciplinary Research Center for Advanced Energy Yangzhou University Yangzhou P. R. China

Q

Qian Li

N

Nana Li

Z

Zhangbin Yang

School of Chemistry and Chemical Engineering Yangzhou University Yangzhou Jiangsu 225002 P.R. China

W

Wenting Li

Y

Yue Lian

School of Chemistry and Chemical Engineering Yancheng Institute of Technology Yancheng 224051 P. R. China

Q

Qing Li

Y

Yanwei Sui

China University of Mining and Technology Xuzhou 221116 P R China

M

Mohsen Shakouri

Canadian Light Source Inc., University of Saskatchewan, SK, Saskatoon S7N 2 V3, Canada

H

Hsiao‐Chien Chen

Dual Master Program in Nano‐Electronic Engineering and Design, Center for Sustainability and Energy Technologies Chang Gung University Taoyuan Taiwan

Y

Yizhou Zhang

H

Huan Pang