Issue 21, 2023

Copolymerization synthesis of highly hydrophilic carbon nitride for efficient solar hydrogen production

Abstract

Polymeric carbon nitride (PCN) holds great potential in solar-to-hydrogen (H2) production, while it usually suffers from hydrophobic and insoluble character, thus greatly limiting solar-to-H2 production efficiency. The construction of a well-defined, highly hydrophilic interface is crucial for efficient charge carrier separation, however, it remains a challenge in synthesis. Here we report the first synthesis of high-hydrophilic PCN by copolymerizing urea with indole via a facile one-step in situ surface-amination strategy. Results reflected that the surface-amination tactic could not only ameliorate its hydrophilicity but also promote the dissociation of charge carriers and simultaneously enrich proton (H+) from water, therefore, improving the rapid production of H2. As expected, the optimal surface-ammoniated sample exhibited a remarkable enhancement for the H2 production of 55.85 μmol h−1 under visible light illumination, which outperformed most reported hydrophilic PCN-based materials thus far. Surprisingly, the optimal sample also presented outstanding photoactivity under blue and green light irradiation. This work sheds light on a novel organic molecular-tailoring protocol for the preparation of hydrophilic carbon-based materials toward highly-efficient solar-to-H2 production.

Graphical abstract: Copolymerization synthesis of highly hydrophilic carbon nitride for efficient solar hydrogen production

Supplementary files

Article information

Article type
Paper
Submitted
06 Feb 2023
Accepted
11 Apr 2023
First published
11 May 2023

J. Mater. Chem. A, 2023,11, 11133-11140

Copolymerization synthesis of highly hydrophilic carbon nitride for efficient solar hydrogen production

Y. Jian, Y. Huang, B. Mao, D. Li, B. Luo, M. Chen, D. Xu and W. Shi, J. Mater. Chem. A, 2023, 11, 11133 DOI: 10.1039/D3TA00670K

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