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Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure

[Image: see text] Herein, we have successfully constructed a solid-state Z-scheme photosystem with enhanced light absorption capacity by combining the optoelectrical properties of AgNPs with those of the MoS(2)/RGO/NiWO(4) (Ag-MRGON) heterostructure. The Ag-MRGON Z-scheme system demonstrates improve...

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Autores principales: Hendi, Abdulmajeed H., Osman, Abdalghaffar M., Khan, Ibrahim, Saleh, Tawfik A., Kandiel, Tarek A., Qahtan, Talal F., Hossain, Mohammad K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7745211/
https://www.ncbi.nlm.nih.gov/pubmed/33344816
http://dx.doi.org/10.1021/acsomega.0c03985
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author Hendi, Abdulmajeed H.
Osman, Abdalghaffar M.
Khan, Ibrahim
Saleh, Tawfik A.
Kandiel, Tarek A.
Qahtan, Talal F.
Hossain, Mohammad K.
author_facet Hendi, Abdulmajeed H.
Osman, Abdalghaffar M.
Khan, Ibrahim
Saleh, Tawfik A.
Kandiel, Tarek A.
Qahtan, Talal F.
Hossain, Mohammad K.
author_sort Hendi, Abdulmajeed H.
collection PubMed
description [Image: see text] Herein, we have successfully constructed a solid-state Z-scheme photosystem with enhanced light absorption capacity by combining the optoelectrical properties of AgNPs with those of the MoS(2)/RGO/NiWO(4) (Ag-MRGON) heterostructure. The Ag-MRGON Z-scheme system demonstrates improved photo-electrochemical (PEC) water-splitting performance in terms of applied bias photon-to-current conversion efficiency (ABPE), which is 0.52%, and 17.3- and 4.3-times better than those of pristine MoS(2) and MoS(2)/NiWO(4) photoanodes, respectively. The application of AgNPs as an optical property enhancer and RGO as an electron mediator improved the photocurrent density of Ag-MRGON to 3.5 mA/cm(2) and suppressed the charge recombination to attain the photostability of ∼2 h. Moreover, the photocurrent onset potential of the Ag-MRGON heterojunction (i.e., 0.61 V(RHE)) is cathodically shifted compared to those of NiWO(4) (0.83 V(RHE)), MoS(2) (0.80 V(RHE)), and MoS(2)/NiWO(4) heterojunction (0.73 V(RHE)). The improved PEC water-splitting performance in terms of ABPE, photocurrent density, and onset potential is attributed to the facilitated charge transfer through the RGO mediator, the plasmonic effect of AgNPs, and the proper energy band alignments with the thermodynamic potentials of hydrogen and oxygen evolution.
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spelling pubmed-77452112020-12-18 Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure Hendi, Abdulmajeed H. Osman, Abdalghaffar M. Khan, Ibrahim Saleh, Tawfik A. Kandiel, Tarek A. Qahtan, Talal F. Hossain, Mohammad K. ACS Omega [Image: see text] Herein, we have successfully constructed a solid-state Z-scheme photosystem with enhanced light absorption capacity by combining the optoelectrical properties of AgNPs with those of the MoS(2)/RGO/NiWO(4) (Ag-MRGON) heterostructure. The Ag-MRGON Z-scheme system demonstrates improved photo-electrochemical (PEC) water-splitting performance in terms of applied bias photon-to-current conversion efficiency (ABPE), which is 0.52%, and 17.3- and 4.3-times better than those of pristine MoS(2) and MoS(2)/NiWO(4) photoanodes, respectively. The application of AgNPs as an optical property enhancer and RGO as an electron mediator improved the photocurrent density of Ag-MRGON to 3.5 mA/cm(2) and suppressed the charge recombination to attain the photostability of ∼2 h. Moreover, the photocurrent onset potential of the Ag-MRGON heterojunction (i.e., 0.61 V(RHE)) is cathodically shifted compared to those of NiWO(4) (0.83 V(RHE)), MoS(2) (0.80 V(RHE)), and MoS(2)/NiWO(4) heterojunction (0.73 V(RHE)). The improved PEC water-splitting performance in terms of ABPE, photocurrent density, and onset potential is attributed to the facilitated charge transfer through the RGO mediator, the plasmonic effect of AgNPs, and the proper energy band alignments with the thermodynamic potentials of hydrogen and oxygen evolution. American Chemical Society 2020-12-01 /pmc/articles/PMC7745211/ /pubmed/33344816 http://dx.doi.org/10.1021/acsomega.0c03985 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Hendi, Abdulmajeed H.
Osman, Abdalghaffar M.
Khan, Ibrahim
Saleh, Tawfik A.
Kandiel, Tarek A.
Qahtan, Talal F.
Hossain, Mohammad K.
Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title_full Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title_fullStr Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title_full_unstemmed Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title_short Visible Light-Driven Photoelectrocatalytic Water Splitting Using Z-Scheme Ag-Decorated MoS(2)/RGO/NiWO(4) Heterostructure
title_sort visible light-driven photoelectrocatalytic water splitting using z-scheme ag-decorated mos(2)/rgo/niwo(4) heterostructure
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7745211/
https://www.ncbi.nlm.nih.gov/pubmed/33344816
http://dx.doi.org/10.1021/acsomega.0c03985
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