Develop Complex Photocatalytic System of D‐π‐A‐type Conjugated Porous Polymers and Benzyl Alcohol Mediated Autocatalysis for Practical Artificial Photosynthesis of H<sub>2</sub>O<sub>2</sub>

D Danfeng Wang (Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering) F Feiyang Tan (Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology School of Petrochemical Engineering Changzhou University Changzhou 213164 China) W Wuzi Zhao (Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology School of Petrochemical Engineering Changzhou University Changzhou 213164 P. R. China) S Shiyuan Zhou Q Qingfeng Xu L Lixuan Kan (School of Chemistry and Chemical Engineering) L Lei Zhu P Peiyang Gu (Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering) J Jianmei Lu

Abstract

AbstractArtificial photosynthesis of H2O2 is conceived to be an ideal approach for replacing the industrial anthraquinone method that suffers from hefty energy penalties and environmental toxicity. However, the low concentration of H2O2 resides as the biggest hurdle for industrial production. Herein, with a focus on fabricating high‐performance heterogeneous photocatalysts and establishing a highly efficient complex photocatalytic system, we report the preparation of D‐π‐A‐type conjugated porous polymers containing a photosensitizer and redox‐active anthraquinone moiety for endowing highly efficient H2O2 production up to 3.0 mmol g−1 h−1. Further, by exploiting the autocatalytic photooxidation feature of benzyl alcohol, •OOH as the key species contributing to H2O2 formation received a substantial accumulation, which stems from the collaboration of the photocatalytic and autocatalytic cycle. Mechanistically, the hydrogen bonding and π–π stacking between the photocatalyst and benzyl alcohol are formed to lower the free energy of the transition states, thus leading to unprecedentedly high efficiency in the photosynthesis of H2O2 up to 140.4 mmol g−1 h−1, with the concentration of 35.1 mmol L−1 and an apparent quantum yield of 49%. This work provides critical insights in advancing sustainable energy conversion research.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

D

Danfeng Wang

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering

F

Feiyang Tan

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology School of Petrochemical Engineering Changzhou University Changzhou 213164 China

W

Wuzi Zhao

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology School of Petrochemical Engineering Changzhou University Changzhou 213164 P. R. China

S

Shiyuan Zhou

Q

Qingfeng Xu

L

Lixuan Kan

School of Chemistry and Chemical Engineering

L

Lei Zhu

P

Peiyang Gu

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering

J

Jianmei Lu