• DocumentCode
    88223
  • Title

    Lateral-Mode Vibration of Microcantilever-Based Sensors in Viscous Fluids Using Timoshenko Beam Theory

  • Author

    Schultz, Joshua A. ; Heinrich, Stephen M. ; Josse, Fabien ; Dufour, Isabelle ; Nigro, Nicholas J. ; Beardslee, Luke A. ; Brand, Oliver

  • Author_Institution
    Dept. of Civil, Constr., & Environ. Eng., Marquette Univ., Milwaukee, WI, USA
  • Volume
    24
  • Issue
    4
  • fYear
    2015
  • fDate
    Aug. 2015
  • Firstpage
    848
  • Lastpage
    860
  • Abstract
    To more accurately model microcantilever resonant behavior in liquids and to improve lateral-mode sensor performance, a new model is developed to incorporate viscous fluid effects and Timoshenko beam effects (shear deformation, rotatory inertia). The model is motivated by studies showing that the most promising geometries for lateral-mode sensing are those for which Timoshenko effects are most pronounced. Analytical solutions for beam response due to harmonic tip force and electrothermal loadings are expressed in terms of total and bending displacements, which correspond to laser and piezoresistive readouts, respectively. The influence of shear deformation, rotatory inertia, fluid properties, and actuation/detection schemes on resonant frequencies (fres) and quality factors (Q) are examined, showing that Timoshenko beam effects may reduce fres and Q by up to 40% and 23%, respectively, but are negligible for width-tolength ratios of 1/10 and lower. Comparisons with measurements (in water) indicate that the model predicts the qualitative data trends, but underestimates the softening that occurs in stiffer specimens, indicating that support deformation becomes a factor. For thinner specimens, the model estimates Q quite well, but exceeds the observed values for thicker specimens, showing that the Stokes resistance model employed should be extended to include pressure effects for these geometries.
  • Keywords
    beams (structures); bending; cantilevers; microfluidics; microsensors; shear deformation; vibrations; viscosity; Stokes resistance model; Timoshenko beam theory; actuation method; bending displacements; detection method; electrothermal loadings; harmonic tip force; laser readout; lateral mode sensing; lateral mode sensor; lateral mode vibration; microcantilever based sensors; piezoresistive readout; pressure effects; quality factors; resonant frequencies; rotatory inertia; shear deformation; viscous fluid effects; Educational institutions; Force; Harmonic analysis; Laser beams; Resonant frequency; Sensors; Vibrations; Microcantilevers; lateral mode; liquid-phase sensing; quality factor; resonant frequency; vibrations;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2014.2354596
  • Filename
    6911969