Title :
Analytical models of resonant rectangular cantilever type chemical sensors for applications in fluids
Author :
Sukuabol, Siripon ; Sood, Dinesh K.
Author_Institution :
Sch. of Electr. & Comput. Eng., RMIT Univ., Melbourne, VIC
fDate :
Nov. 30 2008-Dec. 3 2008
Abstract :
This paper demonstrates the analytical design and optimisation of piezoresistive rectangular cantilevers with particular concern for the geometric factors and associated influences of the displacement response functions through an increase in damping. Microcantilever sensors with a higher frequency response ultimately proved critical due to their response to forces that vary rapidly in time. The increase of the damping due to the fluid loading was shown to be mostly dependent upon the reduction of the cantilever dimensions. Such a scaling downward of dimensions has the profound additional benefit of leading to a marked reduction in response time. Reducing the dimensions of the cantilever provides tangible benefits include: the reduction of the total noise, the maximization of sensitivity to modulations in the Brownian fluctuations from analyst binding and the capacity to account for Brownian noise relative to Johnson noise.
Keywords :
Brownian motion; cantilevers; chemical sensors; fluids; microsensors; thermal noise; Brownian fluctuations; Brownian noise; Johnson noise; chemical sensors; damping; displacement response functions; fluid loading; fluids; geometric factors; microcantilever sensors; piezoresistive rectangular cantilevers; Analytical models; Chemical sensors; Damping; Delay; Design optimization; Fluctuations; Frequency response; Noise reduction; Piezoresistance; Resonance; Brownian fluctuations; Johnson noise; cantilever sensors; fluid density and viscosity;
Conference_Titel :
Sensing Technology, 2008. ICST 2008. 3rd International Conference on
Conference_Location :
Tainan
Print_ISBN :
978-1-4244-2176-3
Electronic_ISBN :
978-1-4244-2177-0
DOI :
10.1109/ICSENST.2008.4757177