DocumentCode :
43909
Title :
Noise Squeezing Controlled Parametric Bifurcation Tracking of MIP-Coated Microbeam MEMS Sensor for TNT Explosive Gas Sensing
Author :
Li, Lily L. ; Holthoff, Ellen L. ; Shaw, Lucas A. ; Burgner, Christopher B. ; Turner, K.L.
Author_Institution :
Univ. of California at Santa Barbara, Santa Barbara, CA, USA
Volume :
23
Issue :
5
fYear :
2014
fDate :
Oct. 2014
Firstpage :
1228
Lastpage :
1236
Abstract :
This paper reports real-time explosive gas sensing (DNT) in atmospheric pressure utilizing the noise squeezing effect that occurs before a bifurcation event. A noise-squeezing controller based on the statistics of phase noise is implemented using high-speed LabVIEW field programmable gated array. A high frequency TNT-molecularly imprinted fixed-fixed microbeam sensor utilizes this nontraditional sensing strategy and performs DNT sensing at various concentrations. Experiments are conducted using both noise-based and sweep-based bifurcation tracking for a direct comparison. Results demonstrate noise-based bifurcation tracking is not only capable of performing reliable frequency tracking, but also show the method is superior to the bifurcation sweep-based tracking. Over three orders of magnitude improvement in acquisition rate is achieved, and as a result, confidence and precision on bifurcation frequency estimation is significantly improved over the bifurcation sweep tracking method, enabling DNT sensing at concentrations much below sub-ppb (parts-per-billion) level.
Keywords :
explosives; gas sensors; microsensors; LabVIEW; TNT explosive gas sensing; TNT-molecularly imprinted fixed-fixed microbeam sensor; atmospheric pressure; bifurcation sweep-based tracking; field programmable gated array; molecular imprinted polymers-coated microbeam MEMS sensor; noise squeezing controlled parametric bifurcation tracking; noise squeezing effect; noise-based bifurcation tracking; noise-squeezing controller; sweep-based bifurcation tracking; Bifurcation; Field programmable gate arrays; Frequency control; Micromechanical devices; Phase noise; Sensors; Bifurcation; mass sensing; noise squeezing; noise squeezing.;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2014.2310206
Filename :
6776428
Link To Document :
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