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Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)

Effects of surface chemical modification with sodium silicate on the gas-sensing properties of F-doped SnO(2) gas sensor designed and fabricated employing micro-electro mechanical system (MEMS) technology were investigated. Gas sensing properties of the sensor were checked against combustible gases...

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Detalles Bibliográficos
Autores principales: Han, Chi-Hwan, Han, Sang-Do, Khatkar, S. P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3872340/
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author Han, Chi-Hwan
Han, Sang-Do
Khatkar, S. P.
author_facet Han, Chi-Hwan
Han, Sang-Do
Khatkar, S. P.
author_sort Han, Chi-Hwan
collection PubMed
description Effects of surface chemical modification with sodium silicate on the gas-sensing properties of F-doped SnO(2) gas sensor designed and fabricated employing micro-electro mechanical system (MEMS) technology were investigated. Gas sensing properties of the sensor were checked against combustible gases like H(2), CO, CH(4) and C(3)H(8) at a heater voltage of 0.7 V. The H(2) sensitivity of the surface modified F-doped SnO(2) micro sensor markedly increased and reached S = 175 which was found to be about 40 times more than that of unmodified sensor (S = ∼ 4.2). The increase in the sensitivity is discussed in terms of increased resistivity and reduced permeation of gaseous oxygen into the underlying sensing layer due to the surface modification of the sensor. The present micro-hydrogen sensor with enhanced sensitivity due to SiO(2) incorporation is a low energy consuming portable sensor module that can be mass-produced using MEMS technology at low cost.
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spelling pubmed-38723402013-12-26 Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2) Han, Chi-Hwan Han, Sang-Do Khatkar, S. P. Sensors (Basel) Full Research Article Effects of surface chemical modification with sodium silicate on the gas-sensing properties of F-doped SnO(2) gas sensor designed and fabricated employing micro-electro mechanical system (MEMS) technology were investigated. Gas sensing properties of the sensor were checked against combustible gases like H(2), CO, CH(4) and C(3)H(8) at a heater voltage of 0.7 V. The H(2) sensitivity of the surface modified F-doped SnO(2) micro sensor markedly increased and reached S = 175 which was found to be about 40 times more than that of unmodified sensor (S = ∼ 4.2). The increase in the sensitivity is discussed in terms of increased resistivity and reduced permeation of gaseous oxygen into the underlying sensing layer due to the surface modification of the sensor. The present micro-hydrogen sensor with enhanced sensitivity due to SiO(2) incorporation is a low energy consuming portable sensor module that can be mass-produced using MEMS technology at low cost. Molecular Diversity Preservation International (MDPI) 2006-05-09 /pmc/articles/PMC3872340/ Text en © 2006 by MDPI (http://www.mdpi.org). Reproduction is permitted for noncommercial purposes.
spellingShingle Full Research Article
Han, Chi-Hwan
Han, Sang-Do
Khatkar, S. P.
Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title_full Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title_fullStr Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title_full_unstemmed Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title_short Enhancement of H(2)-sensing Properties of F-doped SnO(2) Sensor by Surface Modification with SiO(2)
title_sort enhancement of h(2)-sensing properties of f-doped sno(2) sensor by surface modification with sio(2)
topic Full Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3872340/
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