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Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution
Polymeric carbon nitride (g-C(3)N(4)) has succeeded as a striking visible-light photocatalyst for solar-to-hydrogen energy conversion, owing to its economical attribute and high stability. However, due to the lack of sufficient solar-light absorption and rapid photo-generated carrier recombination,...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
RSC
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417475/ https://www.ncbi.nlm.nih.gov/pubmed/36132554 http://dx.doi.org/10.1039/d0na01011a |
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author | Yu, Fengtao Wang, Zhiqiang Zhang, Shicong Wu, Wenjun Ye, Haonan Ding, Haoran Gong, Xueqing Hua, Jianli |
author_facet | Yu, Fengtao Wang, Zhiqiang Zhang, Shicong Wu, Wenjun Ye, Haonan Ding, Haoran Gong, Xueqing Hua, Jianli |
author_sort | Yu, Fengtao |
collection | PubMed |
description | Polymeric carbon nitride (g-C(3)N(4)) has succeeded as a striking visible-light photocatalyst for solar-to-hydrogen energy conversion, owing to its economical attribute and high stability. However, due to the lack of sufficient solar-light absorption and rapid photo-generated carrier recombination, the photocatalytic activity of raw g-C(3)N(4) is still unsatisfactory. Herein, new intramolecular g-C(3)N(4)-based donor–acceptor (D–A) conjugated copolymers have been readily synthesized by a nucleophilic substitution/condensation reaction between urea and 3,7-dihydroxydibenzo[b,d]thiophene 5,5-dioxide (SO), which is strategically used to improve the photocatalytic hydrogen evolution performance. The experimental results demonstrate that CNSO-X not only improves light utilization, but also accelerates the spatial separation efficiency of the photogenerated electron–hole pairs and increases the wettability with the introduction of SO. In addition, the adsorption energy barrier of CNSO-X to H* has a significant reduction via theoretical calculation. As expected, the CNSO-20 realizes the best photocatalytic H(2) evolution activity of 251 μmol h(−1) (50 mg photocatalyst, almost 8.5 times higher than that of pure CN) with an apparent quantum yield of 10.16% at 420 nm, which surpasses most strategies for the organic molecular copolymerization of carbon nitride. Therefore, this strategy opens up a novel avenue to develop highly efficient g-C(3)N(4) based photocatalysts for hydrogen production. |
format | Online Article Text |
id | pubmed-9417475 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | RSC |
record_format | MEDLINE/PubMed |
spelling | pubmed-94174752022-09-20 Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution Yu, Fengtao Wang, Zhiqiang Zhang, Shicong Wu, Wenjun Ye, Haonan Ding, Haoran Gong, Xueqing Hua, Jianli Nanoscale Adv Chemistry Polymeric carbon nitride (g-C(3)N(4)) has succeeded as a striking visible-light photocatalyst for solar-to-hydrogen energy conversion, owing to its economical attribute and high stability. However, due to the lack of sufficient solar-light absorption and rapid photo-generated carrier recombination, the photocatalytic activity of raw g-C(3)N(4) is still unsatisfactory. Herein, new intramolecular g-C(3)N(4)-based donor–acceptor (D–A) conjugated copolymers have been readily synthesized by a nucleophilic substitution/condensation reaction between urea and 3,7-dihydroxydibenzo[b,d]thiophene 5,5-dioxide (SO), which is strategically used to improve the photocatalytic hydrogen evolution performance. The experimental results demonstrate that CNSO-X not only improves light utilization, but also accelerates the spatial separation efficiency of the photogenerated electron–hole pairs and increases the wettability with the introduction of SO. In addition, the adsorption energy barrier of CNSO-X to H* has a significant reduction via theoretical calculation. As expected, the CNSO-20 realizes the best photocatalytic H(2) evolution activity of 251 μmol h(−1) (50 mg photocatalyst, almost 8.5 times higher than that of pure CN) with an apparent quantum yield of 10.16% at 420 nm, which surpasses most strategies for the organic molecular copolymerization of carbon nitride. Therefore, this strategy opens up a novel avenue to develop highly efficient g-C(3)N(4) based photocatalysts for hydrogen production. RSC 2021-01-28 /pmc/articles/PMC9417475/ /pubmed/36132554 http://dx.doi.org/10.1039/d0na01011a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Yu, Fengtao Wang, Zhiqiang Zhang, Shicong Wu, Wenjun Ye, Haonan Ding, Haoran Gong, Xueqing Hua, Jianli Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title | Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title_full | Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title_fullStr | Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title_full_unstemmed | Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title_short | Construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic H(2) evolution |
title_sort | construction of polymeric carbon nitride and dibenzothiophene dioxide-based intramolecular donor–acceptor conjugated copolymers for photocatalytic h(2) evolution |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417475/ https://www.ncbi.nlm.nih.gov/pubmed/36132554 http://dx.doi.org/10.1039/d0na01011a |
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