DocumentCode
1115294
Title
Theoretical Analysis of Strong-Axis Bending Mode Vibrations for Resonant Microcantilever (Bio)Chemical Sensors in Gas or Liquid Phase
Author
Dufour, Isabelle ; Heinrich, Stephen M. ; Josse, Fabien
Author_Institution
Bordeaux I Univ., Talence
Volume
16
Issue
1
fYear
2007
Firstpage
44
Lastpage
49
Abstract
The frequency stability, sensitivity, and limit of detection of a coated-cantilever chemical sensor operating in a dynamic mode are mainly determined by its mechanical quality factor. While a coated-cantilever operating in the gas phase exhibits a large reduction in quality factor, immersion in liquids results in an even greater reduction in the Q-factor due to displaced fluid mass and losses in the surrounding liquid. In this paper, two different bending vibration modes are studied in order to minimize both the losses induced by the surrounding medium and the displaced fluid mass, thus increasing the quality factor and sensitivity and improving (decreasing) the detection limit of the biochemical microsensor. The two particular vibration modes both involve "first mode" flexural vibrations (but in different orthogonal planes), and are referred to herein as "weak-axis bending" (WAB) and "strong-axis bending" (SAB). Using Sader\´s model, the expressions for both the quality factor and the resonant frequency are analyzed for the case of immersion in a viscous fluid. The results indicate that the strong-axis bending mode has certain advantages over the more conventional weak-axis mode in enhancing the sensor sensitivity and detection limit, even for the case in which the WAB and SAB devices have identical resonant frequencies
Keywords
Q-factor; cantilevers; chemical sensors; microsensors; vibrations; Q-factor; Sader model; bending mode vibrations; biochemical microsensor; flexural vibrations; gas phase; liquid phase; microcantilever sensors; quality factor effect; resonant frequency; resonant microcantilever; strong-axis bending; weak-axis bending; Biosensors; Chemical sensors; Fluid dynamics; Liquids; Microsensors; Q factor; Resonance; Resonant frequency; Stability; Vibrations; Liquid environment; microcantilever sensors; quality factor effect; resonant frequency;
fLanguage
English
Journal_Title
Microelectromechanical Systems, Journal of
Publisher
ieee
ISSN
1057-7157
Type
jour
DOI
10.1109/JMEMS.2006.885850
Filename
4099365
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