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Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode

Utilizing photoelectrochemical (PEC) cells to directly collecting solar energy into chemical fuels (e.g., H(2) via water splitting) is a promising way to tackle the energy challenge. α‐Fe(2)O(3) has emerged as a desirable photoanode material in a PEC cell due to its wide spectrum absorption range, c...

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Autores principales: Xu, Yang‐Fan, Rao, Hua‐Shang, Chen, Bai‐Xue, Lin, Ying, Chen, Hong‐Yan, Kuang, Dai‐Bin, Su, Cheng‐Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5115430/
https://www.ncbi.nlm.nih.gov/pubmed/27980959
http://dx.doi.org/10.1002/advs.201500049
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author Xu, Yang‐Fan
Rao, Hua‐Shang
Chen, Bai‐Xue
Lin, Ying
Chen, Hong‐Yan
Kuang, Dai‐Bin
Su, Cheng‐Yong
author_facet Xu, Yang‐Fan
Rao, Hua‐Shang
Chen, Bai‐Xue
Lin, Ying
Chen, Hong‐Yan
Kuang, Dai‐Bin
Su, Cheng‐Yong
author_sort Xu, Yang‐Fan
collection PubMed
description Utilizing photoelectrochemical (PEC) cells to directly collecting solar energy into chemical fuels (e.g., H(2) via water splitting) is a promising way to tackle the energy challenge. α‐Fe(2)O(3) has emerged as a desirable photoanode material in a PEC cell due to its wide spectrum absorption range, chemical stability, and earth abundant component. However, the short excited state lifetime, poor minority charge carrier mobility, and long light penetration depth hamper its application. Recently, the elegantly designed hierarchical macroporous composite nanomaterial has emerged as a strong candidate for photoelectrical applications. Here, a novel 3D antimony‐doped SnO(2) (ATO) macroporous structure is demonstrated as a transparent conducting scaffold to load 1D hematite nanorod to form a composite material for efficient PEC water splitting. An enormous enhancement in PEC performance is found in the 3D electrode compared to the controlled planar one, due to the outstanding light harvesting and charge transport. A facile and simple TiCl(4) treatment further introduces the Ti doping into the hematite while simultaneously forming a passivation layer to eliminate adverse reactions. The results indicate that the structural design and nanoengineering are an effective strategy to boost the PEC performance in order to bring more potential devices into practical use.
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spelling pubmed-51154302016-12-15 Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode Xu, Yang‐Fan Rao, Hua‐Shang Chen, Bai‐Xue Lin, Ying Chen, Hong‐Yan Kuang, Dai‐Bin Su, Cheng‐Yong Adv Sci (Weinh) Full Papers Utilizing photoelectrochemical (PEC) cells to directly collecting solar energy into chemical fuels (e.g., H(2) via water splitting) is a promising way to tackle the energy challenge. α‐Fe(2)O(3) has emerged as a desirable photoanode material in a PEC cell due to its wide spectrum absorption range, chemical stability, and earth abundant component. However, the short excited state lifetime, poor minority charge carrier mobility, and long light penetration depth hamper its application. Recently, the elegantly designed hierarchical macroporous composite nanomaterial has emerged as a strong candidate for photoelectrical applications. Here, a novel 3D antimony‐doped SnO(2) (ATO) macroporous structure is demonstrated as a transparent conducting scaffold to load 1D hematite nanorod to form a composite material for efficient PEC water splitting. An enormous enhancement in PEC performance is found in the 3D electrode compared to the controlled planar one, due to the outstanding light harvesting and charge transport. A facile and simple TiCl(4) treatment further introduces the Ti doping into the hematite while simultaneously forming a passivation layer to eliminate adverse reactions. The results indicate that the structural design and nanoengineering are an effective strategy to boost the PEC performance in order to bring more potential devices into practical use. John Wiley and Sons Inc. 2015-05-15 /pmc/articles/PMC5115430/ /pubmed/27980959 http://dx.doi.org/10.1002/advs.201500049 Text en © 2015 The Authors. Published by WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Xu, Yang‐Fan
Rao, Hua‐Shang
Chen, Bai‐Xue
Lin, Ying
Chen, Hong‐Yan
Kuang, Dai‐Bin
Su, Cheng‐Yong
Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title_full Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title_fullStr Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title_full_unstemmed Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title_short Achieving Highly Efficient Photoelectrochemical Water Oxidation with a TiCl(4) Treated 3D Antimony‐Doped SnO(2) Macropore/Branched α‐Fe(2)O(3) Nanorod Heterojunction Photoanode
title_sort achieving highly efficient photoelectrochemical water oxidation with a ticl(4) treated 3d antimony‐doped sno(2) macropore/branched α‐fe(2)o(3) nanorod heterojunction photoanode
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5115430/
https://www.ncbi.nlm.nih.gov/pubmed/27980959
http://dx.doi.org/10.1002/advs.201500049
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