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ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications

In this work, the fabrication of zinc oxide (ZnO) nanowire networks is presented. By combining ion-track technology, electrochemical deposition, and atomic layer deposition, hierarchical and self-supporting three-dimensional (3D) networks of pure ZnO- and TiO(2)-coated ZnO nanowires were synthesized...

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Autores principales: Movsesyan, Liana, Maijenburg, Albert Wouter, Goethals, Noel, Sigle, Wilfried, Spende, Anne, Yang, Florent, Kaiser, Bernhard, Jaegermann, Wolfram, Park, Sun-Young, Mul, Guido, Trautmann, Christina, Toimil-Molares, Maria Eugenia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164027/
https://www.ncbi.nlm.nih.gov/pubmed/30200568
http://dx.doi.org/10.3390/nano8090693
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author Movsesyan, Liana
Maijenburg, Albert Wouter
Goethals, Noel
Sigle, Wilfried
Spende, Anne
Yang, Florent
Kaiser, Bernhard
Jaegermann, Wolfram
Park, Sun-Young
Mul, Guido
Trautmann, Christina
Toimil-Molares, Maria Eugenia
author_facet Movsesyan, Liana
Maijenburg, Albert Wouter
Goethals, Noel
Sigle, Wilfried
Spende, Anne
Yang, Florent
Kaiser, Bernhard
Jaegermann, Wolfram
Park, Sun-Young
Mul, Guido
Trautmann, Christina
Toimil-Molares, Maria Eugenia
author_sort Movsesyan, Liana
collection PubMed
description In this work, the fabrication of zinc oxide (ZnO) nanowire networks is presented. By combining ion-track technology, electrochemical deposition, and atomic layer deposition, hierarchical and self-supporting three-dimensional (3D) networks of pure ZnO- and TiO(2)-coated ZnO nanowires were synthesized. Analysis by means of high-resolution transmission electron microscopy revealed a highly crystalline structure of the electrodeposited ZnO wires and the anatase phase of the TiO(2) coating. In photoelectrochemical measurements, the ZnO and ZnO/TiO(2) nanowire networks, used as anodes, generated higher photocurrents compared to those produced by their film counterparts. The ZnO/TiO(2) nanowire network exhibited the highest photocurrents. However, the protection by the TiO(2) coatings against chemical corrosion still needs improvement. The one-dimensionality of the nanowires and the large electrolyte-accessible area make these 3D networks promising photoelectrodes, due to the improved transport properties of photogenerated charge carriers and faster redox reactions at the surface. Moreover, they can find further applications in e.g., sensing, catalytical, and piezoelectric devices.
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spelling pubmed-61640272018-10-10 ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications Movsesyan, Liana Maijenburg, Albert Wouter Goethals, Noel Sigle, Wilfried Spende, Anne Yang, Florent Kaiser, Bernhard Jaegermann, Wolfram Park, Sun-Young Mul, Guido Trautmann, Christina Toimil-Molares, Maria Eugenia Nanomaterials (Basel) Article In this work, the fabrication of zinc oxide (ZnO) nanowire networks is presented. By combining ion-track technology, electrochemical deposition, and atomic layer deposition, hierarchical and self-supporting three-dimensional (3D) networks of pure ZnO- and TiO(2)-coated ZnO nanowires were synthesized. Analysis by means of high-resolution transmission electron microscopy revealed a highly crystalline structure of the electrodeposited ZnO wires and the anatase phase of the TiO(2) coating. In photoelectrochemical measurements, the ZnO and ZnO/TiO(2) nanowire networks, used as anodes, generated higher photocurrents compared to those produced by their film counterparts. The ZnO/TiO(2) nanowire network exhibited the highest photocurrents. However, the protection by the TiO(2) coatings against chemical corrosion still needs improvement. The one-dimensionality of the nanowires and the large electrolyte-accessible area make these 3D networks promising photoelectrodes, due to the improved transport properties of photogenerated charge carriers and faster redox reactions at the surface. Moreover, they can find further applications in e.g., sensing, catalytical, and piezoelectric devices. MDPI 2018-09-06 /pmc/articles/PMC6164027/ /pubmed/30200568 http://dx.doi.org/10.3390/nano8090693 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Movsesyan, Liana
Maijenburg, Albert Wouter
Goethals, Noel
Sigle, Wilfried
Spende, Anne
Yang, Florent
Kaiser, Bernhard
Jaegermann, Wolfram
Park, Sun-Young
Mul, Guido
Trautmann, Christina
Toimil-Molares, Maria Eugenia
ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title_full ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title_fullStr ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title_full_unstemmed ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title_short ZnO Nanowire Networks as Photoanode Model Systems for Photoelectrochemical Applications
title_sort zno nanowire networks as photoanode model systems for photoelectrochemical applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164027/
https://www.ncbi.nlm.nih.gov/pubmed/30200568
http://dx.doi.org/10.3390/nano8090693
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