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Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production

Establishing an S-scheme heterojunction is a promising method for increasing the photocatalytic activity of synthetic materials. In this study, nitrogen-doped g-C(3)N(5)/TiO(2) S-scheme photocatalysts have been synthesized and examined for photocatalytic hydrogen production using thermal decompositi...

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Autores principales: Kamalakannan, Saravanan, Balasubramaniyan, Natarajan, Bernaurdshaw, Neppolian, Vattikondala, Ganesh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10597561/
https://www.ncbi.nlm.nih.gov/pubmed/37881703
http://dx.doi.org/10.1039/d3na00597f
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author Kamalakannan, Saravanan
Balasubramaniyan, Natarajan
Bernaurdshaw, Neppolian
Vattikondala, Ganesh
author_facet Kamalakannan, Saravanan
Balasubramaniyan, Natarajan
Bernaurdshaw, Neppolian
Vattikondala, Ganesh
author_sort Kamalakannan, Saravanan
collection PubMed
description Establishing an S-scheme heterojunction is a promising method for increasing the photocatalytic activity of synthetic materials. In this study, nitrogen-doped g-C(3)N(5)/TiO(2) S-scheme photocatalysts have been synthesized and examined for photocatalytic hydrogen production using thermal decomposition methods. Nitrogen-doped g-C(3)N(5)/TiO(2) composites performed better than pure nitrogen-doped g-C(3)N(5) and TiO(2) alone. Using experiments and density functional theory (DFT) calculations, nitrogen (N) doping was identified as being introduced by replacing the carbon (C) atoms in the matrix of g-C(3)N(5). In addition to its narrow band gap, N-doped g-C(3)N(5) showed efficient carrier separation and charge transfer, resulting in the enhanced absorption of visible light and photocatalytic activity. DFT, XPS, optical property characteristics, and PL spectra confirmed these findings, which were attributed to the successful nitrogen doping, and the composite was proven to be a potential candidate for photocatalytic hydrogen generation under light irradiation. The quantity of H(2) produced from the nitrogen-doped g-C(3)N(5)/TiO(2) composite for 3 hours (3515.1 μmol g(−1)) was about three times that of N-doped g-C(3)N(5). The H(2) production percentage of the nitrogen-doped g-C(3)N(5)/TiO(2) catalyst with Pt as the cocatalyst was improved by nearly ten times as compared to N-doped g-C(3)N(5)/TiO(2) without a cocatalyst. Herein, we report the successful preparation of the N-doped g-C(3)N(5)/TiO(2) S-scheme heterojunction and highlight a simple and efficient catalyst for energy storage requirements and environmental monitoring.
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spelling pubmed-105975612023-10-25 Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production Kamalakannan, Saravanan Balasubramaniyan, Natarajan Bernaurdshaw, Neppolian Vattikondala, Ganesh Nanoscale Adv Chemistry Establishing an S-scheme heterojunction is a promising method for increasing the photocatalytic activity of synthetic materials. In this study, nitrogen-doped g-C(3)N(5)/TiO(2) S-scheme photocatalysts have been synthesized and examined for photocatalytic hydrogen production using thermal decomposition methods. Nitrogen-doped g-C(3)N(5)/TiO(2) composites performed better than pure nitrogen-doped g-C(3)N(5) and TiO(2) alone. Using experiments and density functional theory (DFT) calculations, nitrogen (N) doping was identified as being introduced by replacing the carbon (C) atoms in the matrix of g-C(3)N(5). In addition to its narrow band gap, N-doped g-C(3)N(5) showed efficient carrier separation and charge transfer, resulting in the enhanced absorption of visible light and photocatalytic activity. DFT, XPS, optical property characteristics, and PL spectra confirmed these findings, which were attributed to the successful nitrogen doping, and the composite was proven to be a potential candidate for photocatalytic hydrogen generation under light irradiation. The quantity of H(2) produced from the nitrogen-doped g-C(3)N(5)/TiO(2) composite for 3 hours (3515.1 μmol g(−1)) was about three times that of N-doped g-C(3)N(5). The H(2) production percentage of the nitrogen-doped g-C(3)N(5)/TiO(2) catalyst with Pt as the cocatalyst was improved by nearly ten times as compared to N-doped g-C(3)N(5)/TiO(2) without a cocatalyst. Herein, we report the successful preparation of the N-doped g-C(3)N(5)/TiO(2) S-scheme heterojunction and highlight a simple and efficient catalyst for energy storage requirements and environmental monitoring. RSC 2023-09-22 /pmc/articles/PMC10597561/ /pubmed/37881703 http://dx.doi.org/10.1039/d3na00597f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kamalakannan, Saravanan
Balasubramaniyan, Natarajan
Bernaurdshaw, Neppolian
Vattikondala, Ganesh
Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title_full Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title_fullStr Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title_full_unstemmed Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title_short Impact of nitrogen doping on triazole-based graphitic carbon Nitride-TiO(2) (P25) S-scheme heterojunction for improved photocatalytic hydrogen production
title_sort impact of nitrogen doping on triazole-based graphitic carbon nitride-tio(2) (p25) s-scheme heterojunction for improved photocatalytic hydrogen production
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10597561/
https://www.ncbi.nlm.nih.gov/pubmed/37881703
http://dx.doi.org/10.1039/d3na00597f
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