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Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution

Interface engineering is usually considered to be an efficient strategy to promote the separation and migration of photoexcited electron-hole pairs and improve photocatalytic performance. Herein, reduced graphene oxide/mesoporous titanium dioxide nanotube heterojunction assemblies (rGO/TiO(2)) are f...

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Autores principales: Li, Zhenzi, Yang, Decai, Chu, Hongqi, Guo, Liping, Chen, Tao, Mu, Yifan, He, Xiangyi, Zhong, Xueyan, Huang, Baoxia, Zhang, Shiyu, Gao, Yue, Wei, Yuxiu, Wang, Shijie, Zhou, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103938/
https://www.ncbi.nlm.nih.gov/pubmed/35564183
http://dx.doi.org/10.3390/nano12091474
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author Li, Zhenzi
Yang, Decai
Chu, Hongqi
Guo, Liping
Chen, Tao
Mu, Yifan
He, Xiangyi
Zhong, Xueyan
Huang, Baoxia
Zhang, Shiyu
Gao, Yue
Wei, Yuxiu
Wang, Shijie
Zhou, Wei
author_facet Li, Zhenzi
Yang, Decai
Chu, Hongqi
Guo, Liping
Chen, Tao
Mu, Yifan
He, Xiangyi
Zhong, Xueyan
Huang, Baoxia
Zhang, Shiyu
Gao, Yue
Wei, Yuxiu
Wang, Shijie
Zhou, Wei
author_sort Li, Zhenzi
collection PubMed
description Interface engineering is usually considered to be an efficient strategy to promote the separation and migration of photoexcited electron-hole pairs and improve photocatalytic performance. Herein, reduced graphene oxide/mesoporous titanium dioxide nanotube heterojunction assemblies (rGO/TiO(2)) are fabricated via a facile hydrothermal method. The rGO is anchored on the surface of TiO(2) nanosheet assembled nanotubes in a tightly manner due to the laminated effect, in which the formed heterojunction interface becomes efficient charge transfer channels to boost the photocatalytic performance. The resultant rGO/TiO(2) heterojunction assemblies extend the photoresponse to the visible light region and exhibit an excellent photocatalytic hydrogen production rate of 932.9 μmol h(−1) g(−1) under simulated sunlight (AM 1.5G), which is much higher than that of pristine TiO(2) nanotubes (768.4 μmol h(−1) g(−1)). The enhancement can be ascribed to the formation of a heterojunction assembly, establishing effective charge transfer channels and favoring spatial charge separation, the introduced rGO acting as an electron acceptor and the two-dimensional mesoporous nanosheets structure supplying a large surface area and adequate surface active sites. This heterojunction assembly will have potential applications in energy fields.
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spelling pubmed-91039382022-05-14 Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution Li, Zhenzi Yang, Decai Chu, Hongqi Guo, Liping Chen, Tao Mu, Yifan He, Xiangyi Zhong, Xueyan Huang, Baoxia Zhang, Shiyu Gao, Yue Wei, Yuxiu Wang, Shijie Zhou, Wei Nanomaterials (Basel) Article Interface engineering is usually considered to be an efficient strategy to promote the separation and migration of photoexcited electron-hole pairs and improve photocatalytic performance. Herein, reduced graphene oxide/mesoporous titanium dioxide nanotube heterojunction assemblies (rGO/TiO(2)) are fabricated via a facile hydrothermal method. The rGO is anchored on the surface of TiO(2) nanosheet assembled nanotubes in a tightly manner due to the laminated effect, in which the formed heterojunction interface becomes efficient charge transfer channels to boost the photocatalytic performance. The resultant rGO/TiO(2) heterojunction assemblies extend the photoresponse to the visible light region and exhibit an excellent photocatalytic hydrogen production rate of 932.9 μmol h(−1) g(−1) under simulated sunlight (AM 1.5G), which is much higher than that of pristine TiO(2) nanotubes (768.4 μmol h(−1) g(−1)). The enhancement can be ascribed to the formation of a heterojunction assembly, establishing effective charge transfer channels and favoring spatial charge separation, the introduced rGO acting as an electron acceptor and the two-dimensional mesoporous nanosheets structure supplying a large surface area and adequate surface active sites. This heterojunction assembly will have potential applications in energy fields. MDPI 2022-04-26 /pmc/articles/PMC9103938/ /pubmed/35564183 http://dx.doi.org/10.3390/nano12091474 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Zhenzi
Yang, Decai
Chu, Hongqi
Guo, Liping
Chen, Tao
Mu, Yifan
He, Xiangyi
Zhong, Xueyan
Huang, Baoxia
Zhang, Shiyu
Gao, Yue
Wei, Yuxiu
Wang, Shijie
Zhou, Wei
Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title_full Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title_fullStr Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title_full_unstemmed Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title_short Efficient Charge Transfer Channels in Reduced Graphene Oxide/Mesoporous TiO(2) Nanotube Heterojunction Assemblies toward Optimized Photocatalytic Hydrogen Evolution
title_sort efficient charge transfer channels in reduced graphene oxide/mesoporous tio(2) nanotube heterojunction assemblies toward optimized photocatalytic hydrogen evolution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9103938/
https://www.ncbi.nlm.nih.gov/pubmed/35564183
http://dx.doi.org/10.3390/nano12091474
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