• DocumentCode
    1443661
  • Title

    High-isolation CPW MEMS shunt switches. 1. Modeling

  • Author

    Muldavin, Jeremy B. ; Rebeiz, Gabriel M.

  • Author_Institution
    Radiation Lab., Michigan Univ., Ann Arbor, MI, USA
  • Volume
    48
  • Issue
    6
  • fYear
    2000
  • fDate
    6/1/2000 12:00:00 AM
  • Firstpage
    1045
  • Lastpage
    1052
  • Abstract
    This paper, the first of two parts, presents an electromagnetic model for membrane microelectromechanical systems (MEMS) shunt switches for microwave/millimeter-wave applications. The up-state capacitance can be accurately modeled using three-dimensional static solvers, and full-wave solvers are used to predict the current distribution and inductance of the switch. The loss in the up-state position is equivalent to the coplanar waveguide line loss and is 0.01-0.02 dB at 10-30 GHz for a 2-μm-thick Au MEMS shunt switch. It is seen that the capacitance, inductance, and series resistance can be accurately extracted from DC-40 GHz S-parameter measurements. It is also shown that dramatic increase in the down-state isolation (20+ dB) can be achieved with the choice of the correct LC series resonant frequency of the switch. In part 2 of this paper, the equivalent capacitor-inductor-resistor model is used in the design of tuned high isolation switches at 10 and 30 GHz
  • Keywords
    S-parameters; capacitance; coplanar waveguide components; current distribution; equivalent circuits; inductance; losses; membranes; micromechanical devices; microwave switches; millimetre wave devices; modelling; 0.01 to 0.02 dB; 10 to 40 GHz; 2 micron; 3D static solvers; Au; Au MEMS shunt switch; CPW line loss; EM model; LC series resonant frequency; S-parameter measurements; coplanar waveguide line loss; current distribution prediction; down-state isolation; electromagnetic model; full-wave solvers; high-isolation CPW MEMS switches; inductance prediction; membrane MEMS shunt switches; microelectromechanical switches; microwave applications; millimeter-wave applications; series resistance; up-state capacitance modelling; Biomembranes; Capacitance; Coplanar waveguides; Current distribution; Electromagnetic modeling; Inductance; Microelectromechanical systems; Micromechanical devices; Predictive models; Switches;
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/22.904743
  • Filename
    904743