DocumentCode :
190182
Title :
Modeling and characterization of the transient performance of a gas detector based on fringe-field capacitance
Author :
Morimoto, Kenichi ; Yutao Qin ; Gianchandani, Yogesh B.
Author_Institution :
Dept. of Mech. Eng., Univ. of Tokyo, Tokyo, Japan
fYear :
2014
fDate :
2-5 Nov. 2014
Firstpage :
1843
Lastpage :
1846
Abstract :
This paper presents the first comprehensive assessment of the transient performance of a gas detector (chemicapacitor) based on fringe-field capacitance using detailed computational modeling and experimental validation. Intended for use with a micro-gas chromatograph (μGC), this 1 mm2 detector is comprised of interdigitated thin-film metal electrodes that are patterned on a glass substrate and covered with 0.5-4 μm thick polymer. The model couples gas flow, vapor diffusion with partitioning, and capacitance response. The computational results illustrate the dynamic process of vapor peaks passing through the detector. The existing design provides ≈ 0.06 fF/ng sensitivity for n-pentane, and fast response with ≈ 0.1 s peak broadening, which are appropriate for the μGC applications under consideration. The performance is experimentally validated.
Keywords :
capacitance measurement; capacitive sensors; chromatography; electrochemical electrodes; gas sensors; microsensors; organic compounds; polymer films; thin film sensors; μGC; chemicapacitor; computational modeling; fringe-field capacitance; gas detector; gas flow; glass substrate; interdigitated thin-film metal electrode; microgas chromatograph; n-pentane sensitivity; patterning; polymer; size 0.5 mum to 4 mum; vapor diffusion; Capacitance; Computational modeling; Detectors; Dielectric constant; Electrodes; Gas detectors; Polymers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
SENSORS, 2014 IEEE
Conference_Location :
Valencia
Type :
conf
DOI :
10.1109/ICSENS.2014.6985386
Filename :
6985386
Link To Document :
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