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Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing

ZnO nanoparticles were produced by flame spray pyrolysis using zinc naphthenate as a precursor dissolved in toluene/acetonitrile (80/20 vol%). The particles properties were analyzed by XRD, BET. The ZnO particle size and morphology was observed by SEM and HR-TEM revealing spheroidal, hexagonal, and...

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Autores principales: Liewhiran, Chaikarn, Phanichphantandast, Sukon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3785690/
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author Liewhiran, Chaikarn
Phanichphantandast, Sukon
author_facet Liewhiran, Chaikarn
Phanichphantandast, Sukon
author_sort Liewhiran, Chaikarn
collection PubMed
description ZnO nanoparticles were produced by flame spray pyrolysis using zinc naphthenate as a precursor dissolved in toluene/acetonitrile (80/20 vol%). The particles properties were analyzed by XRD, BET. The ZnO particle size and morphology was observed by SEM and HR-TEM revealing spheroidal, hexagonal, and rod-like morphologies. The crystallite sizes of ZnO spheroidal and hexagonal particles ranged from 10-20 nm. ZnO nanorods were ranged from 10-20 nm in width and 20-50 nm in length. Sensing films were produced by mixing the nanoparticles into an organic paste composed of terpineol and ethyl cellulose as a vehicle binder. The paste was doctor-bladed onto Al(2)O(3) substrates interdigitated with Au electrodes. The morphology of the sensing films was analyzed by optical microscopy and SEM analysis. Cracking of the sensing films during annealing process was improved by varying the heating conditions. The gas sensing of ethanol (25-250 ppm) was studied at 400 °C in dry air containing SiC as the fluidized particles. The oxidation of ethanol on the surface of the semiconductor was confirmed by mass spectroscopy (MS). The effect of micro-cracks was quantitatively accounted for as a provider of extra exposed edges. The sensitivity decreased notably with increasing crack of sensing films. It can be observed that crack widths were reduced with decreasing heating rates. Crack-free of thick (5 μm) ZnO films evidently showed higher sensor signal and faster response times (within seconds) than cracked sensor. The sensor signal increased and the response time decreased with increasing ethanol concentration.
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spelling pubmed-37856902013-10-17 Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing Liewhiran, Chaikarn Phanichphantandast, Sukon Sensors (Basel) Full Research Paper ZnO nanoparticles were produced by flame spray pyrolysis using zinc naphthenate as a precursor dissolved in toluene/acetonitrile (80/20 vol%). The particles properties were analyzed by XRD, BET. The ZnO particle size and morphology was observed by SEM and HR-TEM revealing spheroidal, hexagonal, and rod-like morphologies. The crystallite sizes of ZnO spheroidal and hexagonal particles ranged from 10-20 nm. ZnO nanorods were ranged from 10-20 nm in width and 20-50 nm in length. Sensing films were produced by mixing the nanoparticles into an organic paste composed of terpineol and ethyl cellulose as a vehicle binder. The paste was doctor-bladed onto Al(2)O(3) substrates interdigitated with Au electrodes. The morphology of the sensing films was analyzed by optical microscopy and SEM analysis. Cracking of the sensing films during annealing process was improved by varying the heating conditions. The gas sensing of ethanol (25-250 ppm) was studied at 400 °C in dry air containing SiC as the fluidized particles. The oxidation of ethanol on the surface of the semiconductor was confirmed by mass spectroscopy (MS). The effect of micro-cracks was quantitatively accounted for as a provider of extra exposed edges. The sensitivity decreased notably with increasing crack of sensing films. It can be observed that crack widths were reduced with decreasing heating rates. Crack-free of thick (5 μm) ZnO films evidently showed higher sensor signal and faster response times (within seconds) than cracked sensor. The sensor signal increased and the response time decreased with increasing ethanol concentration. Molecular Diversity Preservation International (MDPI) 2007-05-15 /pmc/articles/PMC3785690/ Text en © 2007 by MDPI (http://www.mdpi.org). Reproduction is permitted for noncommercial purposes.
spellingShingle Full Research Paper
Liewhiran, Chaikarn
Phanichphantandast, Sukon
Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title_full Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title_fullStr Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title_full_unstemmed Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title_short Improvement of Flame-made ZnO Nanoparticulate Thick Film Morphology for Ethanol Sensing
title_sort improvement of flame-made zno nanoparticulate thick film morphology for ethanol sensing
topic Full Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3785690/
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