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A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting

A TiO(2)@MWCNTs (multi-wall carbon nanotubes) nanocomposite photoanode is prepared for photoelectrochemical water splitting in this study. The physical and photoelectrochemical properties of the photoanode are characterized using field emission-scanning electron microscopy, transmission electron mic...

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Autores principales: Le, Anh Quynh Huu, Nguyen, Ngoc Nhu Thi, Tran, Hai Duy, Nguyen, Van-Huy, Tran, Le-Hai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Beilstein-Institut 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9764854/
https://www.ncbi.nlm.nih.gov/pubmed/36605608
http://dx.doi.org/10.3762/bjnano.13.125
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author Le, Anh Quynh Huu
Nguyen, Ngoc Nhu Thi
Tran, Hai Duy
Nguyen, Van-Huy
Tran, Le-Hai
author_facet Le, Anh Quynh Huu
Nguyen, Ngoc Nhu Thi
Tran, Hai Duy
Nguyen, Van-Huy
Tran, Le-Hai
author_sort Le, Anh Quynh Huu
collection PubMed
description A TiO(2)@MWCNTs (multi-wall carbon nanotubes) nanocomposite photoanode is prepared for photoelectrochemical water splitting in this study. The physical and photoelectrochemical properties of the photoanode are characterized using field emission-scanning electron microscopy, transmission electron microscopy, X-ray diffraction, and linear sweep voltammetry. The results show that the TiO(2)@MWCNTs nanocomposite has an optical bandgap of 2.5 eV, which is a significant improvement in visible-light absorption capability compared to TiO(2) (3.14 eV). The cyclic voltammograms show that incorporating TiO(2) with the MWCNTs leads to a decrease in the electrical double layer, thereby facilitating the electron transfer rate in the TiO(2)@MWCNTs electrode. Moreover, the current density of the photoelectrochemical electrode formed by TiO(2)@MWCNTs under solar irradiation is significantly higher than that prepared by TiO(2) (vs Ag/AgCl). The low charge capacity of the TiO(2)@MWCNTs electrode–electrolyte interface hinders the recombination of the photogenerated electrons and holes, which contributes to the enhancement of the solar-to-hydrogen (STH) conversion efficiency. The average STH conversion efficiency of the TiO(2)@MWCNTs electrode under solar exposure from 6 AM to 5 PM is 11.1%, 8.88 times higher than that of a TiO(2) electrode. The findings suggested TiO(2)@MWCNTs is a feasible nanomaterial to fabricate the photoanode using photoelectrochemical water splitting under solar irradiation.
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spelling pubmed-97648542023-01-04 A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting Le, Anh Quynh Huu Nguyen, Ngoc Nhu Thi Tran, Hai Duy Nguyen, Van-Huy Tran, Le-Hai Beilstein J Nanotechnol Full Research Paper A TiO(2)@MWCNTs (multi-wall carbon nanotubes) nanocomposite photoanode is prepared for photoelectrochemical water splitting in this study. The physical and photoelectrochemical properties of the photoanode are characterized using field emission-scanning electron microscopy, transmission electron microscopy, X-ray diffraction, and linear sweep voltammetry. The results show that the TiO(2)@MWCNTs nanocomposite has an optical bandgap of 2.5 eV, which is a significant improvement in visible-light absorption capability compared to TiO(2) (3.14 eV). The cyclic voltammograms show that incorporating TiO(2) with the MWCNTs leads to a decrease in the electrical double layer, thereby facilitating the electron transfer rate in the TiO(2)@MWCNTs electrode. Moreover, the current density of the photoelectrochemical electrode formed by TiO(2)@MWCNTs under solar irradiation is significantly higher than that prepared by TiO(2) (vs Ag/AgCl). The low charge capacity of the TiO(2)@MWCNTs electrode–electrolyte interface hinders the recombination of the photogenerated electrons and holes, which contributes to the enhancement of the solar-to-hydrogen (STH) conversion efficiency. The average STH conversion efficiency of the TiO(2)@MWCNTs electrode under solar exposure from 6 AM to 5 PM is 11.1%, 8.88 times higher than that of a TiO(2) electrode. The findings suggested TiO(2)@MWCNTs is a feasible nanomaterial to fabricate the photoanode using photoelectrochemical water splitting under solar irradiation. Beilstein-Institut 2022-12-14 /pmc/articles/PMC9764854/ /pubmed/36605608 http://dx.doi.org/10.3762/bjnano.13.125 Text en Copyright © 2022, Le et al. https://creativecommons.org/licenses/by/4.0/This is an open access article licensed under the terms of the Beilstein-Institut Open Access License Agreement (https://www.beilstein-journals.org/bjnano/terms/terms), which is identical to the Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0 (https://creativecommons.org/licenses/by/4.0/) ). The reuse of material under this license requires that the author(s), source and license are credited. Third-party material in this article could be subject to other licenses (typically indicated in the credit line), and in this case, users are required to obtain permission from the license holder to reuse the material.
spellingShingle Full Research Paper
Le, Anh Quynh Huu
Nguyen, Ngoc Nhu Thi
Tran, Hai Duy
Nguyen, Van-Huy
Tran, Le-Hai
A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title_full A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title_fullStr A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title_full_unstemmed A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title_short A TiO(2)@MWCNTs nanocomposite photoanode for solar-driven water splitting
title_sort tio(2)@mwcnts nanocomposite photoanode for solar-driven water splitting
topic Full Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9764854/
https://www.ncbi.nlm.nih.gov/pubmed/36605608
http://dx.doi.org/10.3762/bjnano.13.125
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