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Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation

Hydrogen generation from water using noble metal-free photocatalysts presents a promising platform for renewable and sustainable energy. Copper-based chalcogenides of earth-abundant elements, especially Cu(2)ZnSnS(4) (CZTS), have recently arisen as a low-cost and environment-friendly material for ph...

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Autores principales: Ha, Enna, Liu, Wei, Wang, Luyang, Man, Ho-Wing, Hu, Liangsheng, Tsang, Shik Chi Edman, Chan, Chris Tsz-Leung, Kwok, Wai-Ming, Lee, Lawrence Yoon Suk, Wong, Kwok-Yin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5206717/
https://www.ncbi.nlm.nih.gov/pubmed/28045066
http://dx.doi.org/10.1038/srep39411
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author Ha, Enna
Liu, Wei
Wang, Luyang
Man, Ho-Wing
Hu, Liangsheng
Tsang, Shik Chi Edman
Chan, Chris Tsz-Leung
Kwok, Wai-Ming
Lee, Lawrence Yoon Suk
Wong, Kwok-Yin
author_facet Ha, Enna
Liu, Wei
Wang, Luyang
Man, Ho-Wing
Hu, Liangsheng
Tsang, Shik Chi Edman
Chan, Chris Tsz-Leung
Kwok, Wai-Ming
Lee, Lawrence Yoon Suk
Wong, Kwok-Yin
author_sort Ha, Enna
collection PubMed
description Hydrogen generation from water using noble metal-free photocatalysts presents a promising platform for renewable and sustainable energy. Copper-based chalcogenides of earth-abundant elements, especially Cu(2)ZnSnS(4) (CZTS), have recently arisen as a low-cost and environment-friendly material for photovoltaics and photocatalysis. Herein, we report a new heterostructure consisting of CZTS nanoparticles anchored onto a MoS(2)-reduced graphene oxide (rGO) hybrid. Using a facile two-step method, CZTS nanoparticles were in situ grown on the surface of MoS(2)-rGO hybrid, which generated high density of nanoscale interfacial contact between CZTS and MoS(2)-rGO hybrid. The photoexcited electrons of CZTS can be readily transported to MoS(2) through rGO backbone, reducing the electron-hole pair recombination. In photocatalytic hydrogen generation under visible light irradiation, the presence of MoS(2)-rGO hybrids enhanced the hydrogen production rate of CZTS by 320%, which can be attributed to the synergetic effect of increased charge separation by rGO and more catalytically active sites from MoS(2). Furthermore, this CZTS/MoS(2)-rGO heterostructure showed much higher photocatalytic activity than both Au and Pt nanoparticle-decorated CZTS (Au/CZTS and Pt/CZTS) photocatalysts, indicating the MoS(2)-rGO hybrid is a better co-catalyst for photocatalytic hydrogen generation than the precious metal. The CZTS/MoS(2)-rGO system also demonstrated stable photocatalytic activity for a continuous 20 h reaction.
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spelling pubmed-52067172017-01-04 Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation Ha, Enna Liu, Wei Wang, Luyang Man, Ho-Wing Hu, Liangsheng Tsang, Shik Chi Edman Chan, Chris Tsz-Leung Kwok, Wai-Ming Lee, Lawrence Yoon Suk Wong, Kwok-Yin Sci Rep Article Hydrogen generation from water using noble metal-free photocatalysts presents a promising platform for renewable and sustainable energy. Copper-based chalcogenides of earth-abundant elements, especially Cu(2)ZnSnS(4) (CZTS), have recently arisen as a low-cost and environment-friendly material for photovoltaics and photocatalysis. Herein, we report a new heterostructure consisting of CZTS nanoparticles anchored onto a MoS(2)-reduced graphene oxide (rGO) hybrid. Using a facile two-step method, CZTS nanoparticles were in situ grown on the surface of MoS(2)-rGO hybrid, which generated high density of nanoscale interfacial contact between CZTS and MoS(2)-rGO hybrid. The photoexcited electrons of CZTS can be readily transported to MoS(2) through rGO backbone, reducing the electron-hole pair recombination. In photocatalytic hydrogen generation under visible light irradiation, the presence of MoS(2)-rGO hybrids enhanced the hydrogen production rate of CZTS by 320%, which can be attributed to the synergetic effect of increased charge separation by rGO and more catalytically active sites from MoS(2). Furthermore, this CZTS/MoS(2)-rGO heterostructure showed much higher photocatalytic activity than both Au and Pt nanoparticle-decorated CZTS (Au/CZTS and Pt/CZTS) photocatalysts, indicating the MoS(2)-rGO hybrid is a better co-catalyst for photocatalytic hydrogen generation than the precious metal. The CZTS/MoS(2)-rGO system also demonstrated stable photocatalytic activity for a continuous 20 h reaction. Nature Publishing Group 2017-01-03 /pmc/articles/PMC5206717/ /pubmed/28045066 http://dx.doi.org/10.1038/srep39411 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Ha, Enna
Liu, Wei
Wang, Luyang
Man, Ho-Wing
Hu, Liangsheng
Tsang, Shik Chi Edman
Chan, Chris Tsz-Leung
Kwok, Wai-Ming
Lee, Lawrence Yoon Suk
Wong, Kwok-Yin
Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title_full Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title_fullStr Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title_full_unstemmed Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title_short Cu(2)ZnSnS(4)/MoS(2)-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
title_sort cu(2)znsns(4)/mos(2)-reduced graphene oxide heterostructure: nanoscale interfacial contact and enhanced photocatalytic hydrogen generation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5206717/
https://www.ncbi.nlm.nih.gov/pubmed/28045066
http://dx.doi.org/10.1038/srep39411
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