Pickering Emulsion Interfaces Enhance Photocatalytic Selective Oxidation of Aromatic C─H Bonds

L Longbo Li (Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China) Y Yu Zhang (Xiangya Hospital, Central South University Changsha China) Q Qi‐Yuan Fan (Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China) R Rongyan Ma (Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China) Q Qincheng Ma (Department College of Chemistry and Chemical Engineering Anhui University of Technology Maanshan 243002 China) J Jun Tang (The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine) X Xinxin Tian (Leibniz-Institut für Katalyse) H Hengquan Yang (Engineering Research Center of Ministry of Education for Fine Chemicals, Shanxi Key Laboratory of Coal-based Value-added Chemicals Green Catalysis Synthesis)

Abstract

Abstract Solar‐driven photocatalysis provides a promising route for the green synthesis of high value‐added oxygenated chemicals through oxidization of C─H bonds. However, improving the photocatalytic selectivity without compromising its activity remains a grand challenge due to the difficulty in controlling the generation of desired reactive oxygen species during the reaction. Here, based on Pickering emulsions, we constructed an interfacial photocatalytic system to enhance the photocatalytic selectivity, exemplified by the selective oxidation of ethylbenzene. Positioning a photocatalyst, bismuth bromide oxide flakes, at the outer side of Pickering emulsion droplet interfaces can regulate the concentrations of generated superoxide anion radicals and hydroxyl radicals, resulting in >99.0% ethylbenzene conversion and >99.0% selectivity towards acetophenone under visible light irradiation. Theoretical calculations and experimental investigations reveal that (i) the loose hydrogen bonding at the outer interfaces of Pickering emulsion droplets increases the dissociation barrier of water molecules, inhibiting the formation of hydroxyl radicals; (ii)  this system can create an oxygen‐rich lipophilic solvation environment which facilitates the chemisorption of oxygen and the generation of superoxide anion radicals. Furthermore, this system can work well in a continuous‐flow fashion with high activity and long‐term operational stability (200 h), illustrating appealing potentials for practical photocatalytic synthesis.

Article Details

Volume / Issue Vol. 65, Issue 8
Published February 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

L

Longbo Li

Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China

Y

Yu Zhang

Xiangya Hospital, Central South University Changsha China

Q

Qi‐Yuan Fan

Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China

R

Rongyan Ma

Engineering Research Center of Ministry of Education for Fine Chemicals School of Chemistry and Chemical Engineering Shanxi Key Laboratory of Coal‐based Value‐added Chemicals Green Catalysis Synthesis Shanxi University Taiyuan 030006 China

Q

Qincheng Ma

Department College of Chemistry and Chemical Engineering Anhui University of Technology Maanshan 243002 China

J

Jun Tang

The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine

X

Xinxin Tian

Leibniz-Institut für Katalyse

H

Hengquan Yang

Engineering Research Center of Ministry of Education for Fine Chemicals, Shanxi Key Laboratory of Coal-based Value-added Chemicals Green Catalysis Synthesis