H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles

High specific surface area (SSABET: 141.6 m2/g) SnO2nanoparticles doped with 0.2-3 wt% Ru were successfully produced in a single step by flame spray pyrolysis (FSP). The phase and crystallite size were analyzed by XRD. The specific surface area (SSABET) of the nanoparticles was measured by nitrogen...

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Main Authors: Chaikarn Liewhiran, Nittaya Tamaekong, Anurat Wisitsoraat, Sukon Phanichphant
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/59338
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-593382018-09-10T03:24:34Z H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles Chaikarn Liewhiran Nittaya Tamaekong Anurat Wisitsoraat Sukon Phanichphant Biochemistry, Genetics and Molecular Biology Chemistry Engineering Physics and Astronomy High specific surface area (SSABET: 141.6 m2/g) SnO2nanoparticles doped with 0.2-3 wt% Ru were successfully produced in a single step by flame spray pyrolysis (FSP). The phase and crystallite size were analyzed by XRD. The specific surface area (SSABET) of the nanoparticles was measured by nitrogen adsorption (BET analysis). As the Ru concentration increased, the SSABETwas found to linearly decrease, while the average BET-equivalent particle diameter (dBET) increased. FSP yielded small Ru particles attached to the surface of the supporting SnO2nanoparticles, indicating a high SSABET. The morphology and accurate size of the primary particles were further investigated by TEM. The crystallite sizes of the spherical, hexagonal, and rectangular SnO2particles were in the range of 3-10 nm. SnO2nanorods were found to range from 3-5 nm in width and 5-20 nm in length. Sensing films were prepared by the spin coating technique. The gas sensing of H2(500-10,000 ppm) was studied at the operating temperatures ranging from 200-350 °C in presence of dry air. After the sensing tests, the morphology and the cross-section of sensing film were analyzed by SEM and EDS analyses. The 0.2%Ru-dispersed on SnO2sensing film showed the highest sensitivity and a very fast response time (6 s) compared to a pure SnO2sensing film, with a highest H2concentration of 1 vol% at 350 °C and a low H2detection limit of 500 ppm at 200 °C. © 2009 by the authors. 2018-09-10T03:14:01Z 2018-09-10T03:14:01Z 2009-11-01 Journal 14248220 2-s2.0-70849121823 10.3390/s91108996 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=70849121823&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/59338
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Biochemistry, Genetics and Molecular Biology
Chemistry
Engineering
Physics and Astronomy
spellingShingle Biochemistry, Genetics and Molecular Biology
Chemistry
Engineering
Physics and Astronomy
Chaikarn Liewhiran
Nittaya Tamaekong
Anurat Wisitsoraat
Sukon Phanichphant
H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
description High specific surface area (SSABET: 141.6 m2/g) SnO2nanoparticles doped with 0.2-3 wt% Ru were successfully produced in a single step by flame spray pyrolysis (FSP). The phase and crystallite size were analyzed by XRD. The specific surface area (SSABET) of the nanoparticles was measured by nitrogen adsorption (BET analysis). As the Ru concentration increased, the SSABETwas found to linearly decrease, while the average BET-equivalent particle diameter (dBET) increased. FSP yielded small Ru particles attached to the surface of the supporting SnO2nanoparticles, indicating a high SSABET. The morphology and accurate size of the primary particles were further investigated by TEM. The crystallite sizes of the spherical, hexagonal, and rectangular SnO2particles were in the range of 3-10 nm. SnO2nanorods were found to range from 3-5 nm in width and 5-20 nm in length. Sensing films were prepared by the spin coating technique. The gas sensing of H2(500-10,000 ppm) was studied at the operating temperatures ranging from 200-350 °C in presence of dry air. After the sensing tests, the morphology and the cross-section of sensing film were analyzed by SEM and EDS analyses. The 0.2%Ru-dispersed on SnO2sensing film showed the highest sensitivity and a very fast response time (6 s) compared to a pure SnO2sensing film, with a highest H2concentration of 1 vol% at 350 °C and a low H2detection limit of 500 ppm at 200 °C. © 2009 by the authors.
format Journal
author Chaikarn Liewhiran
Nittaya Tamaekong
Anurat Wisitsoraat
Sukon Phanichphant
author_facet Chaikarn Liewhiran
Nittaya Tamaekong
Anurat Wisitsoraat
Sukon Phanichphant
author_sort Chaikarn Liewhiran
title H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
title_short H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
title_full H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
title_fullStr H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
title_full_unstemmed H<inf>2</inf>sensing response of flame-spray-made Ru/SnO<inf>2</inf>thick films fabricated from spin-coated nanoparticles
title_sort h<inf>2</inf>sensing response of flame-spray-made ru/sno<inf>2</inf>thick films fabricated from spin-coated nanoparticles
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=70849121823&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/59338
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