EP0769713A2

Improvements in or relating to spatial light modulators

Abstract

A DMD spatial light modulator (20) having an improved reset waveform (80) that improves the electrostatic control over the DMD mirrors (30) during switching states (T3). An intermediate bias level is provided to the yoke (32) and mirror (30) during the mirror reset cycle (T3) which is sufficient to maintain a voltage differential between the mirror/yoke and the address electrodes (26,28,50,52) to dynamically park the mirror during a same-state transition, but which voltage differential is insufficient to overcome the hinge restoration forces during an opposite-state transition such that the mirror releases toward the neutral position and can be captured in the other state upon reapplication of the bias voltage. The transition bias level is maintained for a sufficient time period (T3) to allow the mirror/yoke to release from the landing pads (82) a sufficient distance toward the neutral position. The operating reliability of the device is improved by preventing incident light during same-state mirror transitions from escaping into the display aperture, without impeding the crossover of the mirror during opposite-state mirror transitions. Greater mirror-to-mirror variations can be tolerated without falling outside the mirror arrays acceptable timing operating parameters.

EP0769713A2, drawing sheet 1
Sheet 1 of 10

Term

Term ended

Projected expiry passed 15 October 2016, 9.9 years ago.

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8 claims: 4 independent, 4 dependent

  1. 1
    A method for operating a spatial light modulator having first and second address electrodes underlying an element deflectable to a first position and to a second position, which method comprising;applying a first voltage to a first address electrode;applying a third voltage to the deflectable element to create a voltage differential between the element and the first electrode;applying a fourth voltage to the element during a reset cycle, the fourth voltage being sufficient to retain the element in the first position when the first voltage is maintained to the first address electrode, but which is insufficient to retain the element in the first position when the first voltage to the first address electrode is changed to reduce the voltage differential between the element and the first address electrode.
  2. 2
    The method as claimed in Claim 1 further comprising;applying a second voltage to a second address electrode.
  3. 3
    The method as claimed in Claim 1 or Claim 2 further comprising;reapplying the third voltage to the element following a predetermined period after applying the fourth voltage to cause the element to assume the second position when the voltage differential between the element and the second address electrode is greater than the voltage differential between the element and the first address electrode.
  4. 4
    The method as claimed in any preceding claim further comprising;prior to the step of applying the fourth voltage, alternating the third voltage applied to the element at a frequency corresponding to the resonant frequency of the element.
  5. 5
    The method as claimed in any preceding claim, wherein the step of applying the fourth voltage comprises applying a fourth voltage which is approximately halfway between the third voltage and the first voltage.
  6. 6
    A spatial light modulator comprising;a first address electrode and a second address electrode capable of having a first voltage and a second voltage respectively applied thereto;a deflectable element supported over the address electrodes, the element being deflectable to a first position and to a second position as a function of a voltage differential between the element and the address electrodes;a circuit for applying a third voltage to the element to cause the element to be deflected into either the first position or the second position, the circuit further being capable of selectively applying a fourth voltage to the element which is sufficient to maintain the element in the first position when the first voltage to the first address electrode is maintained, but which is insufficient to maintain the element in the first position when the first voltage is changed to reduce the voltage differential between the element and the first address electrode.
  7. 7
    The spatial light modulator as claimed in Claim 6, wherein the circuit is capable of reapplying the third voltage to the element following a predetermined period after applying the fourth voltage, such that the element is deflected to the second position when the voltage differential between the element and the second address electrode is greater than the voltage differential between the element and the first address electrode.
  8. 8
    The spatial light modulator as claimed in Claim 6 or Claim 7, wherein the deflectable element is a micro-mirror supported by a hinge in a region substantially over the first and second address electrodes.