EP1540738A2

Controlling electromechanical behavior of structures within a microelectromechanical systems device

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 18 September 2023, 3 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

21 claims: 5 independent, 16 dependent

  1. 1
    Claims of equivalent WO 2004026757 A2 IN THE CLAIMS:It is claimed: 1. A method for fabricating a microelectromechanical systems device, the method comprising: fabricating a first layer comprising at least one film having a characteristic electromechanical response, and a characteristic optical response, wherein the characteristic optical response is desirable and the characteristic electromechanical response is undesirable;and modifying the characteristic electromechanical response of the first layer by at controlling charge buildup thereon during activation of the microelectromechanical systems device.
  2. 6
    A microelectromechanical systems device, comprising:a first layer;and at least one second layer on or adjacent the first layer, wherein each second layer is of a material having a charge trapping density to manipulate charge buildup on the first layer.
  3. 13
    A microelectomechanical systems device comprising:a layer including SiO ;and at least one layer comprising Al 2 O 3 on or adjacent the layer comprising SiO 2 .
  4. 15
    A microelectromechanical systems device comprising:a plurality of elements, each having a component that is electrostatically displaceable between an undriven and a driven condition;and a driving mechanism to apply an actuation voltage to each element to displace its respective component from its undriven condition to its driven condition, and to apply a bias voltage to each element to keep its respective component in the driven condition, wherein the actuation voltage is greater than the bias voltage.
  5. 18
    A microelectromechanical systems device comprising:a plurality of interference modulators, each comprising a reflective layer and a transparent layer which is normally spaced from the reflective layer by a gap corresponding to an undriven condition of the interference modulator, the reflective layer being electrostatically drivable towards the transparent layer to at least reduce a height of the gap, corresponding to a driven condition of the interference modulator;and a driving mechanism to drive each interference modulator to its driven condition wherein an actuation voltage required to drive each transparent layer to its driven condition is greater than a bias voltage required to keep each transparent layer in its driven condition.