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Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors

The traditional handmade catalytic combustion gas sensor has some problems such as a pairing difficulty, poor consistency, high power consumption, and not being interchangeable. To address these issues, integrated double catalytic combustion of alcohol gas sensor was designed and manufactured using...

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Detalles Bibliográficos
Autores principales: Gu, Jun-Tao, Zhang, Yong-De, Jiang, Jin-Gang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4003987/
https://www.ncbi.nlm.nih.gov/pubmed/24625742
http://dx.doi.org/10.3390/s140305183
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author Gu, Jun-Tao
Zhang, Yong-De
Jiang, Jin-Gang
author_facet Gu, Jun-Tao
Zhang, Yong-De
Jiang, Jin-Gang
author_sort Gu, Jun-Tao
collection PubMed
description The traditional handmade catalytic combustion gas sensor has some problems such as a pairing difficulty, poor consistency, high power consumption, and not being interchangeable. To address these issues, integrated double catalytic combustion of alcohol gas sensor was designed and manufactured using silicon micro-electro-mechanical systems (MEMS) technology. The temperature field of the sensor is analyzed using the ANSYS finite element analysis method. In this work, the silicon oxide-PECVD-oxidation technique is used to manufacture a SiO(2)-Si(3)N(2)-SiO(2) microstructure carrier with a sandwich structure, while wet etching silicon is used to form a beam structure to reduce the heat consumption. Thin-film technology is adopted to manufacture the platinum-film sensitive resistance. Nano Al(2)O(3)-ZrO-ThO is coated to format the sensor carrier, and the sensitive unit is dipped in a Pt-Pd catalyst solution to form the catalytic sensitive bridge arm. Meanwhile the uncoated catalyst carrier is considered as the reference unit, realizing an integrated chip based on a micro double bridge and forming sensors. The lines of the Pt thin-film resistance have been observed with an electronic microscope. The compensation of the sensitive material carriers and compensation materials have been analyzed using an energy spectrum. The results show that the alcohol sensor can detect a volume fraction between 0 and 4,500 × 10(−6) and has good linear output characteristic. The temperature ranges from −20 to +40 °C. The humidity ranges from 30% to 85% RH. The zero output of the sensor is less than ±2.0% FS. The power consumption is ≤0.2 W, and both the response and recovery time are approximately 20 s.
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spelling pubmed-40039872014-04-29 Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors Gu, Jun-Tao Zhang, Yong-De Jiang, Jin-Gang Sensors (Basel) Article The traditional handmade catalytic combustion gas sensor has some problems such as a pairing difficulty, poor consistency, high power consumption, and not being interchangeable. To address these issues, integrated double catalytic combustion of alcohol gas sensor was designed and manufactured using silicon micro-electro-mechanical systems (MEMS) technology. The temperature field of the sensor is analyzed using the ANSYS finite element analysis method. In this work, the silicon oxide-PECVD-oxidation technique is used to manufacture a SiO(2)-Si(3)N(2)-SiO(2) microstructure carrier with a sandwich structure, while wet etching silicon is used to form a beam structure to reduce the heat consumption. Thin-film technology is adopted to manufacture the platinum-film sensitive resistance. Nano Al(2)O(3)-ZrO-ThO is coated to format the sensor carrier, and the sensitive unit is dipped in a Pt-Pd catalyst solution to form the catalytic sensitive bridge arm. Meanwhile the uncoated catalyst carrier is considered as the reference unit, realizing an integrated chip based on a micro double bridge and forming sensors. The lines of the Pt thin-film resistance have been observed with an electronic microscope. The compensation of the sensitive material carriers and compensation materials have been analyzed using an energy spectrum. The results show that the alcohol sensor can detect a volume fraction between 0 and 4,500 × 10(−6) and has good linear output characteristic. The temperature ranges from −20 to +40 °C. The humidity ranges from 30% to 85% RH. The zero output of the sensor is less than ±2.0% FS. The power consumption is ≤0.2 W, and both the response and recovery time are approximately 20 s. MDPI 2014-03-12 /pmc/articles/PMC4003987/ /pubmed/24625742 http://dx.doi.org/10.3390/s140305183 Text en © 2014 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Gu, Jun-Tao
Zhang, Yong-De
Jiang, Jin-Gang
Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title_full Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title_fullStr Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title_full_unstemmed Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title_short Design and Experimentation with Sandwich Microstructure for Catalytic Combustion-Type Gas Sensors
title_sort design and experimentation with sandwich microstructure for catalytic combustion-type gas sensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4003987/
https://www.ncbi.nlm.nih.gov/pubmed/24625742
http://dx.doi.org/10.3390/s140305183
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