High‐Entropy Modulated High‐Spin Localized Cobalt Sites Enhance Catalytic Ozonation for Efficient Odor Control

R Rumeng Zhang (School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China) H Hao Zhou T Tao Shao (State Key Laboratory of Power Grid Environmental Protection (School of Electrical Engineering and Automation)) Q Qiyu Lian (Innovation Center of Yangtze RiverDelta Zhejiang University Future Water Laboratory Zhejiang Jiaxing, CN 510275 P.R. China) M Mengliang Hu (School of Materials Sun Yat‐Sen University Shenzhen 518107 P.R. China) J Ji Mei (School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China) S Shulin Zuo (School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China) J Jiahao Huang Z Zhuoyun Tang (School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China) D Dehua Xia (School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China)

Abstract

Abstract Catalytic ozonation technology is crucial for environmental remediation due to its exceptional efficiency and capability for complete mineralization of organic pollutants. However, hindered by spin‐forbidden transitions, effective catalytic ozonation remains contingent upon the electronic properties and interfacial interactions of the catalyst. Recent studies identify interfacial atomic metal‐oxygen species (*O) as a key descriptor in catalytic ozonation, determining the derivation of reactive species and subsEquationuent reactivity. Herein, we modulated the high‐spin localized Co active sites in HE‐Co 3 O 4 via a high‐entropy strategy, which selectively stabilizes *O surface species, thereby enhancing catalytic ozonation efficiency. HE‐Co 3 O 4 exhibits a five‐fold higher degradation rate than Co 3 O 4 for 50 ppm CH 3 SH elimination (63‐fold the mass activity compared to commercial MnO 2 ) while maintaining exceptional stability over 24 h at 298 K. Electron paramagnetic resonance (EPR) and magnetization hysteresis (M‐H) measurements confirm the transition of Co 3+ to high‐spin states in HE‐Co 3 O 4 . Density functional theory (DFT) calculations reveal that unpaired electrons enhance the hybridization of Co 3d with O 2p orbitals, thereby establishing a *O‐mediated interfacial pathway. This mechanism is directly observed through in situ Raman spectroscopy. These findings provide insights into the targeted modulation of catalyst electronic structures for ozone‐catalyzed environmental remediation.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

R

Rumeng Zhang

School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China

H

Hao Zhou

T

Tao Shao

State Key Laboratory of Power Grid Environmental Protection (School of Electrical Engineering and Automation)

Q

Qiyu Lian

Innovation Center of Yangtze RiverDelta Zhejiang University Future Water Laboratory Zhejiang Jiaxing, CN 510275 P.R. China

M

Mengliang Hu

School of Materials Sun Yat‐Sen University Shenzhen 518107 P.R. China

J

Ji Mei

School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China

S

Shulin Zuo

School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China

J

Jiahao Huang

Z

Zhuoyun Tang

School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China

D

Dehua Xia

School of Environmental Science and Engineering Sun Yat‐Sen University Guangzhou 510275 P.R. China