• DocumentCode
    843067
  • Title

    A Soft-Landing Waveform for Actuation of a Single-Pole Single-Throw Ohmic RF MEMS Switch

  • Author

    Czaplewski, David A. ; Dyck, Christopher W. ; Sumali, Hartono ; Massad, Jordan E. ; Kuppers, Jaron D. ; Reines, Isak ; Cowan, William D. ; Tigges, Christopher P.

  • Author_Institution
    MEMS Devices & Reliability Phys., Sandia Nat. Labs., Albuquerque, NM
  • Volume
    15
  • Issue
    6
  • fYear
    2006
  • Firstpage
    1586
  • Lastpage
    1594
  • Abstract
    A soft-landing actuation waveform was designed to reduce the bounce of a single-pole single-throw (SPST) ohmic radio frequency (RF) microelectromechanical systems (MEMS) switch during actuation. The waveform consisted of an actuation voltage pulse, a coast time, and a hold voltage. The actuation voltage pulse had a short duration relative to the transition time of the switch and imparted the kinetic energy necessary to close the switch. After the actuation pulse was stopped, damping and restoring forces slowed the switch to near-zero velocity as it approached the closed position. This is referred to as the coast time. The hold voltage was applied upon reaching closure to keep the switch from opening. An ideal waveform would close the switch with near zero impact velocity. The switch dynamics resulting from an ideal waveform were modeled using finite element methods and measured using laser Doppler vibrometry. The ideal waveform closed the switch with an impact velocity of less than 3 cm/s without rebound. Variations in the soft-landing waveform closed the switch with impact velocities of 12.5 cm/s with rebound amplitudes ranging from 75 to 150 nm compared to impact velocities of 22.5 cm/s and rebound amplitudes of 150 to 200 nm for a step waveform. The ideal waveform closed the switch faster than a simple step voltage actuation because there was no rebound and it reduced the impact force imparted on the contacting surfaces upon closure
  • Keywords
    Doppler measurement; finite element analysis; microswitches; vibration measurement; RF MEMS switch; SPST ohmic radiofrequency MEMS switch; finite element methods; ideal waveform; laser Doppler vibrometry; ohmic switch; single-pole single-throw switch; soft-landing actuation waveform; switch dynamics; Damping; Finite element methods; Kinetic energy; Laser modes; Microelectromechanical systems; Micromechanical devices; Radio frequency; Radiofrequency microelectromechanical systems; Switches; Voltage;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/JMEMS.2006.883576
  • Filename
    4020263