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Thermoelastic damping in MEMS gyroscopes at high frequencies

  • Daniel Schiwietz
  • , Eva M. Weig
  • , Peter Degenfeld-Schonburg
  • Robert Bosch GmbH
  • Technical University of Munich
  • Munich Center for Quantum Science and Technology (MCQST)

Research output: Contribution to journalArticlepeer-review

33 Scopus citations

Abstract

Microelectromechanical systems (MEMS) gyroscopes are widely used, e.g., in modern automotive and consumer applications, and require signal stability and accuracy in rather harsh environmental conditions. In many use cases, device reliability must be guaranteed under large external loads at high frequencies. The sensitivity of the sensor to such external loads depends strongly on the damping, or rather quality factor, of the high-frequency mechanical modes of the structure. In this paper, we investigate the influence of thermoelastic damping on several high-frequency modes by comparing finite element simulations with measurements of the quality factor in an application-relevant temperature range. We measure the quality factors over different temperatures in vacuum, to extract the relevant thermoelastic material parameters of the polycrystalline MEMS device. Our simulation results show a good agreement with the measured quantities, therefore proving the applicability of our method for predictive purposes in the MEMS design process. Overall, we are able to uniquely identify the thermoelastic effects and show their significance for the damping of the high-frequency modes of an industrial MEMS gyroscope. Our approach is generic and therefore easily applicable to any mechanical structure with many possible applications in nano- and micromechanical systems. [Figure not available: see fulltext.]

Original languageEnglish
Article number11
JournalMicrosystems and Nanoengineering
Volume9
Issue number1
DOIs
StatePublished - Dec 2023

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