Single‐Atom Engineering of Covalent Organic Framework for Photocatalytic H2 Production Coupled with Benzylamine Oxidation

Author:

Xia Yang12,Zhu Bicheng3,Li Liuyi4,Ho Wingkei15ORCID,Wu Jinsong2,Chen Haoming6,Yu Jiaguo3

Affiliation:

1. Department of Science and Environmental Studies and the Centre for Environment and Sustainable Development (CESD) The Education University of Hong Kong Tai Po, New Territories Hong Kong 999077 P. R. China

2. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan 430070 China

3. Laboratory of Solar Fuel Faculty of Materials Science and Chemistry China University of Geosciences 388 Lumo Road Wuhan 430074 P. R. China

4. Key Laboratory of Eco‐materials Advanced Technology College of Materials Science and Engineering Fuzhou University New Campus Minhou Fujian 350108 China

5. State Key Laboratory of Marine Pollution City University of Hong Kong Tat Chee Avenue Kowloon Hong Kong 999077 P. R. China

6. Department of Chemistry National Taiwan University Taipei 10617 Taiwan

Abstract

AbstractIn photocatalysis, reducing the exciton binding energy and boosting the conversion of excitons into free charge carriers are vital to enhance photocatalytic activity. This work presents a facile strategy of engineering Pt single atoms on a 2D hydrazone‐based covalent organic framework (TCOF) to promote H2 production coupled with selective oxidation of benzylamine. The optimised TCOF‐Pt SA photocatalyst with 3 wt% Pt single atom exhibited superior performance to TCOF and TCOF‐supported Pt nanoparticle catalysts. The production rates of H2 and N‐benzylidenebenzylamine over TCOF‐Pt SA3 are 12.6 and 10.9 times higher than those over TCOF, respectively. Empirical characterisation and theoretical simulation showed that the atomically dispersed Pt is stabilised on the TCOF support through the coordinated N1‐Pt‐C2 sites, thereby induing the local polarization and improving the dielectric constant to reach the low exciton binding energy. These phenomena led to the promotion of exciton dissociation into electrons and holes and the acceleration of the separation and transport of photoexcited charge carriers from bulk to the surface. This work provides new insights into the regulation of exciton effect for the design of advanced polymer photocatalysts.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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