Microdroplets Boosted Photocatalytic H <sub>2</sub> O <sub>2</sub> Production Over Covalent Organic Frameworks via Tri‐Phase Interface Catalysis

Y Yuchun Xu (School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China) W Wanying Xie (Institute of Frontier Chemistry, School of Chemistry and Chemical Engineering) N Ning Sun (Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Zhangjiang Institute for Advanced Study) X Xiuqin Ci (School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China) Y Yunjie Lang (School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China) C Changjiang Yang T Tianyi Liu L Li Yang W Wei‐Qiao Deng (School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China) Z Zhen Li

Abstract

ABSTRACT Photocatalytic H 2 O 2 production from H 2 O/O 2 is a green solar energy conversion strategy, but the conventional bulk liquid systems suffer from poor mass transfer and limited active site accessibility. Here, by introducing sessile water microdroplets into the system using a covalent organic framework (DS‐OH‐COF) as a photocatalyst, the H 2 O 2 production rate was significantly enhanced. The yield strongly depends on droplet size. At 1 µL under air atmosphere, H 2 O 2 yield reached 11.11 mmol g −1 h −1 , representing a 12.3‐fold increase over bulk water systems. Under O 2 , the yield increases to 14.79 mmol g −1 h −1 , outperforming most reported photocatalysts. The large specific surface area of microdroplets enhances O 2 mass transfer into the liquid phase, promoting interaction with catalyst active sites. Most importantly, the gas‐liquid‐solid tri‐phase interface plays a vital role in the catalytic process. Density functional theory calculations confirm that the O 2 adsorption behavior is modulated by the substrate, which regulates O 2 reduction at the tri‐phase interface. The microdroplet system also enabled efficient methyl orange degradation, demonstrating its practical potential. This microdroplet‐based catalytic path effectively overcomes the inherent limitations of insufficient oxygen mass transfer and low efficiency in bulk reactions, providing new insights for catalytic H 2 O 2 generation.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yuchun Xu

School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China

W

Wanying Xie

Institute of Frontier Chemistry, School of Chemistry and Chemical Engineering

N

Ning Sun

Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Zhangjiang Institute for Advanced Study

X

Xiuqin Ci

School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China

Y

Yunjie Lang

School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China

C

Changjiang Yang

T

Tianyi Liu

L

Li Yang

W

Wei‐Qiao Deng

School of Chemistry and Chemical Engineering Institute of Frontier Chemistry Shandong University Qingdao Shandong China

Z

Zhen Li