Anion Vacancies Triggered Spin Polarization Enables Efficient Piezocatalysis for Water Cleanup

Q Qiang Zhong Y Yue Sun S Shao‐Gui Yang (School of Environment, Jiangsu Province Engineering Research Center of Environmental Risk Prevention and Emergency Response Technology Jiangsu Engineering Lab of Water and Soil Eco‐remediation, Nanjing Normal University No. 1 Wen yuan Road Nanjing Jiangsu 210023 P.R. China) C Chen‐Min Xu (School of Environment, Jiangsu Province Engineering Research Center of Environmental Risk Prevention and Emergency Response Technology Jiangsu Engineering Lab of Water and Soil Eco‐remediation, Nanjing Normal University No. 1 Wen yuan Road Nanjing Jiangsu 210023 P.R. China) Z Zhao‐Qing Liu (School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/ Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory For Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou P.R. China) K Kan Zhang (School of Materials Science and Engineering) S Shi‐Cheng Yan (Eco‐materials and Renewable Energy Research Center (ERERC) College of Engineering and Applied Sciences, Nanjing University No. 22 Hankou Road, Nanjing Jiangsu 210093 P.R. China) H Huan He (National Engineering Laboratory for Druggable Gene and Protein Screening, College of Life Science, Northeast Normal University)

Abstract

Abstract The conversion of aromatic organic pollutants into value‐added chemical feedstocks is still suffering from sluggish carbon reduction kinetics with spin‐forbidden transitions. Here, we report an anion vacancy‐triggered spin polarization strategy to efficiently convert phenol into carbon monoxide (CO) with fast kinetics. The creating Se vacancies (V se ) stimulate the spin polarization of both Fe and Mo in Fe single atom modified MoSe 2 (Fe/MoSe 2 ), in which spin polarization can enhance the quantity of spin electrons and facilitate the transport of electrons that share the same spin direction with greater efficiency in charge separation. Batch experiments and theoretical calculations reveal that the unpaired spin electrons of Fe and Mo atoms not only accelerate the formation and immobilization of key intermediate *COOH, but also provide spin electrons for *COOH further cleavage with a lower reaction energy barrier. Moreover, profiting from the crucial bridging role of peroxydisulfate (PDS), phenol can be first oxidized to carbonate/CO 2 through PDS activation and then provide a sufficient carbon source for CO formation with favorable reaction kinetics. Impressively, the Fe/MoSe 2 piezocatalysis coupled with PDS exhibits 298.28 µmol·g −1 CO production rate for phenol degradation with over 60 h durability.

Article Details

Volume / Issue Vol. 64, Issue 32
Published August 04, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

Q

Qiang Zhong

Y

Yue Sun

S

Shao‐Gui Yang

School of Environment, Jiangsu Province Engineering Research Center of Environmental Risk Prevention and Emergency Response Technology Jiangsu Engineering Lab of Water and Soil Eco‐remediation, Nanjing Normal University No. 1 Wen yuan Road Nanjing Jiangsu 210023 P.R. China

C

Chen‐Min Xu

School of Environment, Jiangsu Province Engineering Research Center of Environmental Risk Prevention and Emergency Response Technology Jiangsu Engineering Lab of Water and Soil Eco‐remediation, Nanjing Normal University No. 1 Wen yuan Road Nanjing Jiangsu 210023 P.R. China

Z

Zhao‐Qing Liu

School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/ Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory For Water Quality and Conservation of the Pearl River Delta Ministry of Education Guangzhou University Guangzhou P.R. China

K

Kan Zhang

School of Materials Science and Engineering

S

Shi‐Cheng Yan

Eco‐materials and Renewable Energy Research Center (ERERC) College of Engineering and Applied Sciences, Nanjing University No. 22 Hankou Road, Nanjing Jiangsu 210093 P.R. China

H

Huan He

National Engineering Laboratory for Druggable Gene and Protein Screening, College of Life Science, Northeast Normal University