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ZnO Coated Anodic 1D TiO2 Nanotube Layers: Efficient Photo-Electrochemical and Gas Sensing Heterojunction.

Článekopen accesspeer-reviewedpostprint
dc.contributor.authorKuberský, Petr
dc.contributor.authorNg, Siowwoon
dc.contributor.authorKrbal, Milos
dc.contributor.authorPřikryl, Jan
dc.contributor.authorGärtnerová, Viera
dc.contributor.authorMoravcová, Daniela
dc.contributor.authorSopha, Hanna
dc.contributor.authorZazpe, Raul
dc.contributor.authorYam, Fong Kwom
dc.contributor.authorJäger, Aleš
dc.contributor.authorHromádko, Luděk
dc.contributor.authorBeneš, Ludvík
dc.contributor.authorHamáček, Aleš
dc.contributor.authorMacák, Jan
dc.date.accessioned2017-10-02T07:52:29Z
dc.date.available2017-10-02T07:52:29Z
dc.date.issued2017-09-19
dc.description.abstractWe demonstrate in this work a fascinating synergism of a high surface area heterojunction between TiO2 in the form of ordered 1D anodic nanotube layers of a high aspect ratio and ZnO coatings of different thicknesses, produced by atomic layer deposition. The ZnO coatings effectively passivate the defects within the TiO2 nanotube walls and significantly improve their charge carrier separation. Upon the ultraviolet and visible light irradiation, an increase of the ZnO coating thickness from 0.19 to 19 nm and an increase of the external potential from 0.4 - 2 V, yields up to 8-fold enhancement of the photocurrent density. This enhancement translates into extremely high incident photon to current conversion efficiency of ~95 %, which is among the highest values reported in the literature for TiO2 based nanostructures. In addition, the photoactive region is expanded to a broader range close to the visible spectral region, compared to the uncoated nanotube layers. Synergistic effect arising from ZnO coated TiO2 nanotube layers also yields an improved ethanol sensing response, almost 11-fold compared to the uncoated nanotube layers. The design of the high-area 1D heterojunction presented here opens pathways for the light- and gas-assisted applications in photocatalysis, water splitting, sensors, and so on.cze
dc.formatp. 1-10eng
dc.identifier.doi10.1002/adem.201700589
dc.identifier.issn1527-2648
dc.identifier.scopus2-s2.0-85030122766
dc.identifier.urihttps://hdl.handle.net/10195/69563
dc.language.isoencze
dc.peerreviewedyeseng
dc.project.IDEC/H2020/638857/EU/Towards New Generation of Solid-State Photovoltaic Cell: Harvesting Nanotubular Titania and Hybrid Chromophores/CHROMTISOL
dc.publicationstatuspostprinteng
dc.publisherWileycze
dc.relation.ispartofAdvanced Engineering Materials.2017.
dc.relation.publisherversionhttp://onlinelibrary.wiley.com/doi/10.1002/adem.201700589/abstract
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Czech Republic*
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/3.0/cz/*
dc.subjectself-organized TiO2 nanotubescze
dc.subjectZnO coatingscze
dc.subjectALDcze
dc.subjectcharge separationcze
dc.subjectethanol sensingcze
dc.titleZnO Coated Anodic 1D TiO2 Nanotube Layers: Efficient Photo-Electrochemical and Gas Sensing Heterojunction.cze
dc.typeArticlecze
dspace.entity.typePublication

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