DocumentCode :
25770
Title :
Thermal-Piezoresistive Resonators and Self-Sustained Oscillators for Gas Recognition and Pressure Sensing
Author :
Xiaobo Guo ; Yun-bo Yi ; Pourkamali, Siavash
Author_Institution :
Dept. of Mech. & Mater. Eng., Univ. of Denver, Denver, CO, USA
Volume :
13
Issue :
8
fYear :
2013
fDate :
Aug. 2013
Firstpage :
2863
Lastpage :
2872
Abstract :
This paper presents experimental and theoretical investigation of the response of microscale dual-plate thermal-piezoresistive resonators (TPRs) and self-sustained oscillators (TPOs) to different gases and pressures. It is demonstrated that the resonant frequency of such devices follow particular trends in response to the changes in the surrounding gas and its pressure. A mathematical model is derived to explain the damping dependent frequency shift characteristic of the TPO. The solution of the model indicates that the stiffness of the actuator beam decreases as the value of the damping coefficient drops at lower gas density caused by the change in the gas molecular mass or pressure. When operated in the TPR mode (linear operation), however, the frequency shift of the same silicon structure is mainly a function of gas thermal conductivity. The two different sensing mechanisms are confirmed by the measurement results showing opposite frequency shift for the TPR and TPO in helium-nitrogen mixtures. In pressure tests, frequency shifts as high as -2300 ppm are measured for a TPO by changing the air pressure from 84 to 43 kPa.
Keywords :
gas sensors; piezoresistive devices; pressure sensors; thermal conductivity; damping coefficient drops; gas molecular mass; gas recognition; mathematical model; pressure sensing; resonant frequency; self-sustained oscillators; thermal-piezoresistive resonators; Thermal-piezoresistive; damping; gas density; resonator and oscillator; thermal conductivity;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2013.2258667
Filename :
6504464
Link To Document :
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