Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films

In this paper, ultra-sensitive hydrogen (H2+) gas sensors based on flame-spray-made Pd-catalyzed SnO2+ nanoparticles is presented. Pd-loaded SnO2+ crystalline nanoparticles with high specific surface area and well-controlled size were synthesized by flame spray pyrolysis (FSP) in one step. The parti...

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Main Authors: Liewhiran C., Tamaekong N., Wisitsoraat A., Tuantranont A., Phanichphant S.
Format: Article
Language:English
Published: 2014
Online Access:http://www.scopus.com/inward/record.url?eid=2-s2.0-84872580479&partnerID=40&md5=19d619dfc66bad5a4f3e52d7656bb507
http://cmuir.cmu.ac.th/handle/6653943832/7176
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-71762014-08-30T03:51:39Z Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films Liewhiran C. Tamaekong N. Wisitsoraat A. Tuantranont A. Phanichphant S. In this paper, ultra-sensitive hydrogen (H2+) gas sensors based on flame-spray-made Pd-catalyzed SnO2+ nanoparticles is presented. Pd-loaded SnO2+ crystalline nanoparticles with high specific surface area and well-controlled size were synthesized by flame spray pyrolysis (FSP) in one step. The particle properties were characterized by XRD, BET, SEM, TEM and EDS analyses. The H2+-sensing performances in terms of sensor response, response time and selectivity were optimized by varying Pd concentration between 0.2 and 2 wt%. An optimal Pd concentration for H 2+ sensing was found to be 0.2 wt%. The optimal sensing film (0.2 wt% Pd/SnO2+, 10μm in thickness) showed an ultra-high sensor response of ∼104 to 1 vol% of H2+ at 200°C and very short response time within a few seconds. Moreover, the optimum sensing temperature of Pd-loaded SnO2+ films was shifted to a lower value compared with that of unloaded SnO2+ film. The significant enhancement of H 2+ sensing performances was attributed to highly effective spillover mechanism of well-dispersed Pd catalyst in SnO2+ matrix at low Pd-loading concentration. Furthermore, the catalyst selectivity of Pd toward H2+ was found to be significantly higher than those of two other noble metals including Pt and Ru, respectively. Therefore, the flame-made 0.2 wt% Pd/SnO2+ sensors is one of the most promising candidates for highly sensitive and selective detection of H2+. © 2012 Elsevier B.V. All rights reserved. 2014-08-30T03:51:39Z 2014-08-30T03:51:39Z 2013 Article 09254005 10.1016/j.snb.2012.10.087 SABCE http://www.scopus.com/inward/record.url?eid=2-s2.0-84872580479&partnerID=40&md5=19d619dfc66bad5a4f3e52d7656bb507 http://cmuir.cmu.ac.th/handle/6653943832/7176 English
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
language English
description In this paper, ultra-sensitive hydrogen (H2+) gas sensors based on flame-spray-made Pd-catalyzed SnO2+ nanoparticles is presented. Pd-loaded SnO2+ crystalline nanoparticles with high specific surface area and well-controlled size were synthesized by flame spray pyrolysis (FSP) in one step. The particle properties were characterized by XRD, BET, SEM, TEM and EDS analyses. The H2+-sensing performances in terms of sensor response, response time and selectivity were optimized by varying Pd concentration between 0.2 and 2 wt%. An optimal Pd concentration for H 2+ sensing was found to be 0.2 wt%. The optimal sensing film (0.2 wt% Pd/SnO2+, 10μm in thickness) showed an ultra-high sensor response of ∼104 to 1 vol% of H2+ at 200°C and very short response time within a few seconds. Moreover, the optimum sensing temperature of Pd-loaded SnO2+ films was shifted to a lower value compared with that of unloaded SnO2+ film. The significant enhancement of H 2+ sensing performances was attributed to highly effective spillover mechanism of well-dispersed Pd catalyst in SnO2+ matrix at low Pd-loading concentration. Furthermore, the catalyst selectivity of Pd toward H2+ was found to be significantly higher than those of two other noble metals including Pt and Ru, respectively. Therefore, the flame-made 0.2 wt% Pd/SnO2+ sensors is one of the most promising candidates for highly sensitive and selective detection of H2+. © 2012 Elsevier B.V. All rights reserved.
format Article
author Liewhiran C.
Tamaekong N.
Wisitsoraat A.
Tuantranont A.
Phanichphant S.
spellingShingle Liewhiran C.
Tamaekong N.
Wisitsoraat A.
Tuantranont A.
Phanichphant S.
Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
author_facet Liewhiran C.
Tamaekong N.
Wisitsoraat A.
Tuantranont A.
Phanichphant S.
author_sort Liewhiran C.
title Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
title_short Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
title_full Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
title_fullStr Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
title_full_unstemmed Ultra-sensitive H2+ sensors based on flame-spray-made Pd-loaded SnO2+ sensing films
title_sort ultra-sensitive h2+ sensors based on flame-spray-made pd-loaded sno2+ sensing films
publishDate 2014
url http://www.scopus.com/inward/record.url?eid=2-s2.0-84872580479&partnerID=40&md5=19d619dfc66bad5a4f3e52d7656bb507
http://cmuir.cmu.ac.th/handle/6653943832/7176
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