• DocumentCode
    45853
  • Title

    Resonance-Enhanced Piezoelectric Microphone Array for Broadband or Prefiltered Acoustic Sensing

  • Author

    Baumgartel, L. ; Vafanejad, A. ; Shih-Jui Chen ; Eun Sok Kim

  • Author_Institution
    Dept. of Phys. & Astron., Univ. of Southern California, Los Angeles, CA, USA
  • Volume
    22
  • Issue
    1
  • fYear
    2013
  • fDate
    Feb. 2013
  • Firstpage
    107
  • Lastpage
    114
  • Abstract
    We report an array of piezoelectric monocrystalline silicon microphones for audio-range acoustic sensing. Thirteen cantilever-type diaphragm transducers make up the array, each having a closely spaced and precisely controlled resonant frequency. These overlapping resonances serve to greatly boost the sensitivity of the array when the signals are added; if the signals are individually taken, the array acts as a physical filter bank with a quality factor over 40. Such filtering would enhance the performance and the efficiency of speech-recognition systems. In the “summing mode,” the array demonstrates high response over a large bandwidth, with unamplified sensitivity greater than 2.5 mV/Pa from 240 to 6.5 kHz. Both modes of operation rely on the precise control of resonant frequencies, often a challenge with large compliant microelectromechanical-system (MEMS) structures, where residual stress causes deformation. We mitigate these ill effects through the use of stress-compensating layer thicknesses and a stress-free monocrystalline diaphragm. For determining device geometry, we develop a simple analytical method that yields excellent agreement between designed and measured resonant frequency; all devices are within 4.5%, and four are within 0.5% (just several hertz). The technique could be useful not only for microphones but also for other low-frequency MEMS transducers designed for resonance operation at a specific frequency.
  • Keywords
    Q-factor; channel bank filters; micromechanical devices; microphone arrays; speech recognition; audio-range acoustic sensing; bandwidth 240 kHz to 6.5 kHz; broadband acoustic sensing; cantilever-type diaphragm transducers; device geometry; low-frequency MEMS transducers; microelectromechanical-system structures; physical filter bank; piezoelectric monocrystalline silicon microphones; prefiltered acoustic sensing; quality factor; residual stress; resonance-enhanced piezoelectric microphone array; resonant frequencies; speech-recognition systems; stress-compensating layer thicknesses; stress-free monocrystalline diaphragm; summing mode; Arrays; Microphones; Resonant frequency; Sensitivity; Sensors; Shape; Transducers; Acoustic transducers; filter bank; microphone; piezoelectric; resonant sensing; speech recognition;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2012.2216505
  • Filename
    6310001