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Surface-Specific Modification of Graphitic Carbon Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic CO(2) Reduction with a Supramolecular Photocatalyst
[Image: see text] Photocatalytic CO(2) reduction is in high demand for sustainable energy management. Hybrid photocatalysts combining semiconductors with supramolecular photocatalysts represent a powerful strategy for constructing visible-light-driven CO(2) reduction systems with strong oxidation po...
Autores principales: | , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2023
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020964/ https://www.ncbi.nlm.nih.gov/pubmed/36857173 http://dx.doi.org/10.1021/acsami.3c00955 |
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author | Sakakibara, Noritaka Shizuno, Mitsuhiko Kanazawa, Tomoki Kato, Kosaku Yamakata, Akira Nozawa, Shunsuke Ito, Tsuyohito Terashima, Kazuo Maeda, Kazuhiko Tamaki, Yusuke Ishitani, Osamu |
author_facet | Sakakibara, Noritaka Shizuno, Mitsuhiko Kanazawa, Tomoki Kato, Kosaku Yamakata, Akira Nozawa, Shunsuke Ito, Tsuyohito Terashima, Kazuo Maeda, Kazuhiko Tamaki, Yusuke Ishitani, Osamu |
author_sort | Sakakibara, Noritaka |
collection | PubMed |
description | [Image: see text] Photocatalytic CO(2) reduction is in high demand for sustainable energy management. Hybrid photocatalysts combining semiconductors with supramolecular photocatalysts represent a powerful strategy for constructing visible-light-driven CO(2) reduction systems with strong oxidation power. Here, we demonstrate the novel effects of plasma surface modification of graphitic carbon nitride (C(3)N(4)), which is an organic semiconductor, to achieve better affinity and electron transfer at the interface of a hybrid photocatalyst consisting of C(3)N(4) and a Ru(II)–Ru(II) binuclear complex (RuRu′). This plasma treatment enabled the “surface-specific” introduction of oxygen functional groups via the formation of a carbon layer, which worked as active sites for adsorbing metal-complex molecules with methyl phosphonic-acid anchoring groups onto the plasma-modified surface of C(3)N(4). Upon photocatalytic CO(2) reduction with the hybrid under visible-light irradiation, the plasma-surface-modified C(3)N(4) with RuRu′ enhanced the durability of HCOOH production by three times compared to that achieved when using a nonmodified system. The high selectivity of HCOOH production against byproduct evolution (H(2) and CO) was improved, and the turnover number of HCOOH production based on the RuRu′ used reached 50 000, which is the highest among the metal-complex/semiconductor hybrid systems reported thus far. The improved activity is mainly attributed to the promotion of electron transfer from C(3)N(4) to RuRu′ under light irradiation via the accumulation of electrons trapped in deep defect sites on the plasma-modified surface of C(3)N(4). |
format | Online Article Text |
id | pubmed-10020964 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-100209642023-03-18 Surface-Specific Modification of Graphitic Carbon Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic CO(2) Reduction with a Supramolecular Photocatalyst Sakakibara, Noritaka Shizuno, Mitsuhiko Kanazawa, Tomoki Kato, Kosaku Yamakata, Akira Nozawa, Shunsuke Ito, Tsuyohito Terashima, Kazuo Maeda, Kazuhiko Tamaki, Yusuke Ishitani, Osamu ACS Appl Mater Interfaces [Image: see text] Photocatalytic CO(2) reduction is in high demand for sustainable energy management. Hybrid photocatalysts combining semiconductors with supramolecular photocatalysts represent a powerful strategy for constructing visible-light-driven CO(2) reduction systems with strong oxidation power. Here, we demonstrate the novel effects of plasma surface modification of graphitic carbon nitride (C(3)N(4)), which is an organic semiconductor, to achieve better affinity and electron transfer at the interface of a hybrid photocatalyst consisting of C(3)N(4) and a Ru(II)–Ru(II) binuclear complex (RuRu′). This plasma treatment enabled the “surface-specific” introduction of oxygen functional groups via the formation of a carbon layer, which worked as active sites for adsorbing metal-complex molecules with methyl phosphonic-acid anchoring groups onto the plasma-modified surface of C(3)N(4). Upon photocatalytic CO(2) reduction with the hybrid under visible-light irradiation, the plasma-surface-modified C(3)N(4) with RuRu′ enhanced the durability of HCOOH production by three times compared to that achieved when using a nonmodified system. The high selectivity of HCOOH production against byproduct evolution (H(2) and CO) was improved, and the turnover number of HCOOH production based on the RuRu′ used reached 50 000, which is the highest among the metal-complex/semiconductor hybrid systems reported thus far. The improved activity is mainly attributed to the promotion of electron transfer from C(3)N(4) to RuRu′ under light irradiation via the accumulation of electrons trapped in deep defect sites on the plasma-modified surface of C(3)N(4). American Chemical Society 2023-03-01 /pmc/articles/PMC10020964/ /pubmed/36857173 http://dx.doi.org/10.1021/acsami.3c00955 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Sakakibara, Noritaka Shizuno, Mitsuhiko Kanazawa, Tomoki Kato, Kosaku Yamakata, Akira Nozawa, Shunsuke Ito, Tsuyohito Terashima, Kazuo Maeda, Kazuhiko Tamaki, Yusuke Ishitani, Osamu Surface-Specific Modification of Graphitic Carbon Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic CO(2) Reduction with a Supramolecular Photocatalyst |
title | Surface-Specific
Modification of Graphitic Carbon
Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic
CO(2) Reduction with a Supramolecular Photocatalyst |
title_full | Surface-Specific
Modification of Graphitic Carbon
Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic
CO(2) Reduction with a Supramolecular Photocatalyst |
title_fullStr | Surface-Specific
Modification of Graphitic Carbon
Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic
CO(2) Reduction with a Supramolecular Photocatalyst |
title_full_unstemmed | Surface-Specific
Modification of Graphitic Carbon
Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic
CO(2) Reduction with a Supramolecular Photocatalyst |
title_short | Surface-Specific
Modification of Graphitic Carbon
Nitride by Plasma for Enhanced Durability and Selectivity of Photocatalytic
CO(2) Reduction with a Supramolecular Photocatalyst |
title_sort | surface-specific
modification of graphitic carbon
nitride by plasma for enhanced durability and selectivity of photocatalytic
co(2) reduction with a supramolecular photocatalyst |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020964/ https://www.ncbi.nlm.nih.gov/pubmed/36857173 http://dx.doi.org/10.1021/acsami.3c00955 |
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