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Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules

We propose a novel synthetic route by combining imprinting transfer of a Sb-doped SnO(2) (ATO)-ZnO composite micrograting pattern (MP), i.e., microstrip lines, on a sensor substrate and subsequent hydrothermal growth of ZnO nanowires (NWs) for producing a hierarchical ZnO NW-loaded ATO-ZnO MP as an...

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Autores principales: Choi, Hak-Jong, Choi, Seon-Jin, Choo, Soyoung, Kim, Il-Doo, Lee, Heon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4705460/
https://www.ncbi.nlm.nih.gov/pubmed/26743814
http://dx.doi.org/10.1038/srep18731
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author Choi, Hak-Jong
Choi, Seon-Jin
Choo, Soyoung
Kim, Il-Doo
Lee, Heon
author_facet Choi, Hak-Jong
Choi, Seon-Jin
Choo, Soyoung
Kim, Il-Doo
Lee, Heon
author_sort Choi, Hak-Jong
collection PubMed
description We propose a novel synthetic route by combining imprinting transfer of a Sb-doped SnO(2) (ATO)-ZnO composite micrograting pattern (MP), i.e., microstrip lines, on a sensor substrate and subsequent hydrothermal growth of ZnO nanowires (NWs) for producing a hierarchical ZnO NW-loaded ATO-ZnO MP as an improved chemo-resistive sensing layer. Here, ATO-ZnO MP structure with 3-μm line width, 9-μm pitch, and 6-μm height was fabricated by direct transfer of mixed ATO and ZnO nanoparticle (NP)-dispersed resists, which are pre-patterned on a polydimethylsiloxane (PDMS) mold. ZnO NWs with an average diameter of less than 50 nm and a height of 250 nm were quasi-vertically grown on the ATO-ZnO MP, leading to markedly enhanced surface area and heterojunction composites between each ATO NP, ZnO NP, and ZnO NW. A ZnO NW-loaded MP sensor with a relative ratio of 1:9 between ATO and ZnO (1:9 ATO-ZnO), exhibited highly sensitive and selective acetone sensing performance with 2.84-fold higher response (R(air)/R(gas) = 12.8) compared to that (R(air)/R(gas) = 4.5) of pristine 1:9 ATO-ZnO MP sensor at 5 ppm. Our results demonstrate the processing advantages of direct imprinting-assisted hydrothermal growth for large-scale homogeneous coating of hierarchical oxide layers, particularly for applications in highly sensitive and selective chemical sensors.
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spelling pubmed-47054602016-01-19 Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules Choi, Hak-Jong Choi, Seon-Jin Choo, Soyoung Kim, Il-Doo Lee, Heon Sci Rep Article We propose a novel synthetic route by combining imprinting transfer of a Sb-doped SnO(2) (ATO)-ZnO composite micrograting pattern (MP), i.e., microstrip lines, on a sensor substrate and subsequent hydrothermal growth of ZnO nanowires (NWs) for producing a hierarchical ZnO NW-loaded ATO-ZnO MP as an improved chemo-resistive sensing layer. Here, ATO-ZnO MP structure with 3-μm line width, 9-μm pitch, and 6-μm height was fabricated by direct transfer of mixed ATO and ZnO nanoparticle (NP)-dispersed resists, which are pre-patterned on a polydimethylsiloxane (PDMS) mold. ZnO NWs with an average diameter of less than 50 nm and a height of 250 nm were quasi-vertically grown on the ATO-ZnO MP, leading to markedly enhanced surface area and heterojunction composites between each ATO NP, ZnO NP, and ZnO NW. A ZnO NW-loaded MP sensor with a relative ratio of 1:9 between ATO and ZnO (1:9 ATO-ZnO), exhibited highly sensitive and selective acetone sensing performance with 2.84-fold higher response (R(air)/R(gas) = 12.8) compared to that (R(air)/R(gas) = 4.5) of pristine 1:9 ATO-ZnO MP sensor at 5 ppm. Our results demonstrate the processing advantages of direct imprinting-assisted hydrothermal growth for large-scale homogeneous coating of hierarchical oxide layers, particularly for applications in highly sensitive and selective chemical sensors. Nature Publishing Group 2016-01-08 /pmc/articles/PMC4705460/ /pubmed/26743814 http://dx.doi.org/10.1038/srep18731 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Choi, Hak-Jong
Choi, Seon-Jin
Choo, Soyoung
Kim, Il-Doo
Lee, Heon
Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title_full Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title_fullStr Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title_full_unstemmed Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title_short Hierarchical ZnO Nanowires-loaded Sb-doped SnO(2)-ZnO Micrograting Pattern via Direct Imprinting-assisted Hydrothermal Growth and Its Selective Detection of Acetone Molecules
title_sort hierarchical zno nanowires-loaded sb-doped sno(2)-zno micrograting pattern via direct imprinting-assisted hydrothermal growth and its selective detection of acetone molecules
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4705460/
https://www.ncbi.nlm.nih.gov/pubmed/26743814
http://dx.doi.org/10.1038/srep18731
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