Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.

A simple technique to fabricate nanostructured WO3 thin films onto conductomeric transducers has been employed for ethanol sensing application. Initially, pure tungsten (W) thin films were deposited onto the substrate employing RF sputterer and followed by an etching process. Three types of etching...

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Main Authors: Yaacob, Mohd. Hanif, Ahmad, Muhammad Zamharir, Sadek, Abu Z., Jian, Z. Ou, Latham, Kay, Wlodarski, Wojtek
Format: Article
Language:English
English
Published: 2013
Online Access:http://psasir.upm.edu.my/id/eprint/28578/1/Facile%20synthesis%20of%20nanostructured%20WO3%20thin%20films%20and%20their%20characterization%20for%20ethanol%20sensing.pdf
http://psasir.upm.edu.my/id/eprint/28578/
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spelling my.upm.eprints.285782015-10-23T07:43:48Z http://psasir.upm.edu.my/id/eprint/28578/ Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing. Yaacob, Mohd. Hanif Ahmad, Muhammad Zamharir Sadek, Abu Z. Jian, Z. Ou Latham, Kay Wlodarski, Wojtek A simple technique to fabricate nanostructured WO3 thin films onto conductomeric transducers has been employed for ethanol sensing application. Initially, pure tungsten (W) thin films were deposited onto the substrate employing RF sputterer and followed by an etching process. Three types of etching agent were used: nitric (HNO3), sulphuric (H2SO4), and phosphoric (H3PO4) acid. It was found that the surface morphology and crystallinity of the WO3 films were heavily dependant to the etchants employed during the fabrication process. The developed sensors were tested towards ethanol vapor of different concentrations (10–200 ppm) at temperatures between room and 450 °C. The sensors showed stable and reproducible response at optimum operating temperatures. High sensor response towards vaporized ethanol as well as fast τres and τrec was observed during the “adsorption” and “desorption” interval. The recorded maximum response for these devices when exposed towards 100 ppm ethanol was measured to be 8 (Ro = 4.6 kΩ), 5.8 (Ro = 22.5 GΩ), and 5 (Ro = 0.29 MΩ) for HNO3, H3PO4, and H2SO4, respectively. The optimum operating temperatures were determined to be 400, 300–380, and 360 °C for the sensors developed using HNO3, H3PO4, and H2SO4, respectively. 2013 Article PeerReviewed application/pdf en http://psasir.upm.edu.my/id/eprint/28578/1/Facile%20synthesis%20of%20nanostructured%20WO3%20thin%20films%20and%20their%20characterization%20for%20ethanol%20sensing.pdf Yaacob, Mohd. Hanif and Ahmad, Muhammad Zamharir and Sadek, Abu Z. and Jian, Z. Ou and Latham, Kay and Wlodarski, Wojtek (2013) Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing. Materials Chemistry and Physics, 141 (3-Feb). pp. 912-919. ISSN 0254-0584 10.1016/j.matchemphys.2013.06.022 English
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
language English
English
description A simple technique to fabricate nanostructured WO3 thin films onto conductomeric transducers has been employed for ethanol sensing application. Initially, pure tungsten (W) thin films were deposited onto the substrate employing RF sputterer and followed by an etching process. Three types of etching agent were used: nitric (HNO3), sulphuric (H2SO4), and phosphoric (H3PO4) acid. It was found that the surface morphology and crystallinity of the WO3 films were heavily dependant to the etchants employed during the fabrication process. The developed sensors were tested towards ethanol vapor of different concentrations (10–200 ppm) at temperatures between room and 450 °C. The sensors showed stable and reproducible response at optimum operating temperatures. High sensor response towards vaporized ethanol as well as fast τres and τrec was observed during the “adsorption” and “desorption” interval. The recorded maximum response for these devices when exposed towards 100 ppm ethanol was measured to be 8 (Ro = 4.6 kΩ), 5.8 (Ro = 22.5 GΩ), and 5 (Ro = 0.29 MΩ) for HNO3, H3PO4, and H2SO4, respectively. The optimum operating temperatures were determined to be 400, 300–380, and 360 °C for the sensors developed using HNO3, H3PO4, and H2SO4, respectively.
format Article
author Yaacob, Mohd. Hanif
Ahmad, Muhammad Zamharir
Sadek, Abu Z.
Jian, Z. Ou
Latham, Kay
Wlodarski, Wojtek
spellingShingle Yaacob, Mohd. Hanif
Ahmad, Muhammad Zamharir
Sadek, Abu Z.
Jian, Z. Ou
Latham, Kay
Wlodarski, Wojtek
Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
author_facet Yaacob, Mohd. Hanif
Ahmad, Muhammad Zamharir
Sadek, Abu Z.
Jian, Z. Ou
Latham, Kay
Wlodarski, Wojtek
author_sort Yaacob, Mohd. Hanif
title Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
title_short Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
title_full Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
title_fullStr Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
title_full_unstemmed Facile synthesis of nanostructured WO3 thin films and their characterization for ethanol sensing.
title_sort facile synthesis of nanostructured wo3 thin films and their characterization for ethanol sensing.
publishDate 2013
url http://psasir.upm.edu.my/id/eprint/28578/1/Facile%20synthesis%20of%20nanostructured%20WO3%20thin%20films%20and%20their%20characterization%20for%20ethanol%20sensing.pdf
http://psasir.upm.edu.my/id/eprint/28578/
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score 13.159267