Shell-Type Micromechanical Oscillator

Abstract

Shell-type micromechanical resonators operating in the radio frequency range were fabricated utilizing mechanical stress that is built into polysilicon thin films. A significant increase of the resonant frequency (compared to flat, plate-type resonators of the same size) and the rich variety of vibrating modes demonstrate great potential for "2.5-Dimensional" MEMS structures. A finite curvature of the shell also provides a novel mechanism for driving resonators by coupling in plane stress with out of plane deflection. By modulating the intensity of a low power laser beam (P roughly 10microW) focused on the resonator we introduced a time-varying, in-plane, thermomechanical stress. This stress modulation resulted in experimentally observed, large amplitude, out-of-plane, vibrations for a dome-type resonator. A double laser beam experimental setup was constructed where mechanical motion of a shell-type resonator was actuated by a sharply focused, modulated Ar+ ion (blue) laser beam and detected by a red HeNe laser using an interferometric setup. A positive feedback loop was implemented by amplifying the red laser signal (related to the oscillator deflection) and using it to modulate the blue (driving) laser beam. Stable self-sustained vibrations were observed providing that the feedback gain was high enough. Employing a frequency selective amplifier in the feedback loop allowed excitation of different modes of vibrations. Fine frequency tuning was realized by adjusting the CW component of either lasers' intensity or a phase shift in the feedback loop. Frequency stability better than 1 ppm (10(exp -6)) at 9 MHz was demonstrated for self-sustained vibrations for certain modes of the dome-shaped oscillators.

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Document Details

Document Type
Technical Report
Publication Date
Apr 01, 2003
Accession Number
ADA637553

Entities

People

  • Alan Zehnder
  • Brian Houston
  • Christopher Michael
  • Harold Craighead
  • Jeevak Parpia
  • Keith Aubin
  • Maxim Zalalutdinov
  • Rob Reichenbach
  • Tuncay Alan

Organizations

  • Cornell University

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Amplifiers
  • Chemical Vapor Deposition
  • Detection
  • Fabrication
  • Films
  • Laser Beams
  • Lasers
  • Light Sources
  • Materials
  • Microelectromechanical Systems
  • Modal Analysis
  • Oscillators
  • Phase Shift
  • Quartz Resonators
  • Radio Frequency Devices
  • Resonant Frequency
  • Resonators

Fields of Study

  • Physics

Readers

  • Microwave Engineering.
  • Robotics and Automation.
  • Structural Dynamics.

Technology Areas

  • Directed Energy