IP Library Granted Patent US 8,035,885
Granted Patent B2
US 8,035,885 · App. 12/698,854 · Granted Oct 11, 2011

TWDM element, imager, and method for temporally and spatially modulating by using the same

Assignee: Shanghai Lexvu Opto Microelectronics Technology Co., Ltd.
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Quick Facts
Patent No.
US 8,035,885
App. No.
12/698,854
Granted
Oct 11, 2011
Kind
B2
Abstract

A tri wavelength diffracting modulation (TWDM) element, a TWDM imager, and methods of temporally and spatially modulating by using the same are disclosed. The TWDM element includes first and second sets of movable reflective rigid plates under independent electrical actuation, provides four different spatial configurations for reflecting and selectively diffracting incident radiation of three distinguished wavelengths. The TWDM imager is formed with a plurality of the TWDM elements in a regularly spaced planar array configuration on a planar substrate. Incident visible light is spatially modulated by the TWDM imager, either in a time sequential mode or via spatial combination with help of an aligned color filter array.

Claims (47)

1. A tri wavelength diffracting modulation (TWDM) element comprises:

a first set of movable reflective rigid plates, a second set of movable reflective rigid plates, a first set of top reflective surfaces topped with the first set of movable reflective rigid plates, and a second set of top reflective surfaces topped with the second set of movable reflective rigid plates, wherein the first set of top reflective surfaces and the second set of top reflective surfaces are both configured parallel to a top reference plane and have equal reflection to incident electromagnetic radiation of a defined spectrum in a first direction 1 ;

wherein the first set of movable reflective rigid plates and the second set of movable reflective rigid plates are adapted to be both placed at a zero position where the first set of top reflective surfaces and the second set of top reflective surfaces are kept at a zero distance relative and parallel to the top reference plane;

wherein the first set of movable reflective rigid plates is adapted to be displaced to a first position while keeping the first set of top reflective surfaces latched at a first vertical distance from but parallel to the top reference plane; and the second set of movable reflective rigid plates is adapted to be displaced to a second position while keeping the second set of top reflective surfaces latched at a second vertical distance from but parallel to the top reference plane; and

wherein the first vertical distance is equal to m*λ 1 /4, the second vertical distance is equal to n*λ 2 /4, and absolute difference between the first vertical distance and the second vertical distance is equal to p*λ 3 /4, where the λ 1 , λ 2 and λ 3 are first, second and third distinguished wavelengths within the defined spectrum of the incident electromagnetic radiation, and m, n and p are odd integers.

2. The TWDM element according to claim 1 , wherein the incident electromagnetic radiation is visible light while λ 1 , λ 2 and λ 3 are three chosen color wavelengths between 380 nm and 750 nm.

3. The TWDM element according to claim 1 , wherein the first set of movable reflective rigid plates comprises a first set of top electrodes and the second set of movable reflective rigid plates comprises a second set of top electrodes, and the TWDM element further comprises:

an elemental substrate comprising a first set of bottom electrodes and a second set of bottom electrodes, both electrically connected with a elemental driving circuitry and spatially aligned with the first set of top electrodes and the second set of top electrodes respectively along the first direction; and

a first set of deformable connectors and a second set of deformable connectors respectively connecting the first set of movable reflective rigid plates and the second set of movable reflective rigid plates structurally to the elemental substrate and electrically to the first set of top electrodes and the second set of top electrodes, and then respectively to the elemental driving circuitry;

wherein the first set of top electrodes and the first set of bottom electrodes are adapted to be electrically charged and discharged for forming electrostatic contraction between the first set of movable reflective rigid plates and the elemental substrate through the elemental driving circuitry; and the second set of top electrodes and the second set of bottom electrodes are adapted to be electrically charged and discharged for forming electrostatic contraction between the second set of movable reflective rigid plates and the elemental substrate through the elemental driving circuitry;

wherein the first set of top electrodes and the first set of bottom electrodes as well as the second set of top electrodes and the second set of bottom electrodes are adapted to be discharged for diminishing electrostatic contraction between the first set of movable reflective rigid plates and the elemental substrate and between the second set of movable reflective rigid plates and the elemental substrate, for keeping the first set of deformable connectors and the second set of deformable connectors all at un-deformed states, so as to place the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position; and

wherein the first set of top electrodes and the first set of bottom electrodes are adapted to be charged for forming sufficient electrostatic contraction between the first set of movable reflective rigid plates and the elemental substrate, deforming the first set of deformable connectors for moving the first set of top reflective surfaces vertically but in parallel to the top reference plane, and latching the first set of top reflective surfaces at the first position from but parallel to the top reference plane; and the second set of top electrodes and the second set of bottom electrodes are adapted to be charged for forming sufficient electrostatic contraction between the second set of movable reflective rigid plates and the elemental substrate, deforming the second set of deformable connectors for moving the second set of top reflective surfaces vertically but in parallel to the top reference plane, and latching the second set of top reflective surfaces at the second vertical distance from but parallel to the top reference plane.

4. The TWDM element according to claim 3 , further comprising a first set of distance limiters installed onto the first set of movable reflective rigid plates and a second set of distance limiters installed onto the second set of movable reflective rigid plates; wherein:

the first set of top electrodes and the first set of bottom electrodes are adapted to be electrically induced with electrical charges of opposite polarizations for generating sufficient electrostatic contraction between the first set of movable reflective rigid plates and the elemental substrate, so as to latch the first set of top reflective surfaces at the first position by the first set of distance limiters; and

the second set of top electrodes and the second set of bottom electrodes are adapted to be electrically induced with electrical charges of opposite polarizations for generating sufficient electrostatic contraction between the second set of movable reflective rigid plates and the elemental substrate, so as to latch the second set of top reflective surfaces at the second position by the second set of distance limiters.

5. The TWDM element according to claim 3 , wherein the first set of top electrodes is configured at top of the first set of movable reflective rigid plates provided with the first set of top reflective surfaces, and the second set of top electrodes is configured at top of the second set of movable reflective rigid plates provided with the second set of top reflective surfaces.

6. The TWDM element according to claim 3 , wherein the first set of top electrodes is configured at bottom of the first set of movable reflective rigid plates provided with the first set of top reflective surfaces, and the second set of top electrodes is configured at bottom of the second set of movable reflective rigid plates provided with the second set of top reflective surfaces.

7. The TWDM element according to claim 6 , wherein the first set of movable reflective rigid plates further comprises a first set of reinforcing plates composed with and sandwiched between the first set of top reflective surfaces and the first set of top electrodes, and the second set of movable reflective rigid plates further comprises a second set of reinforcing plates composed with and sandwiched between the second set of top reflective surfaces and the second set of top electrodes.

8. The TWDM element according to claim 7 , further comprising:

a first set of displacement translators adapted to connect the first set of movable reflective rigid plates with the first set of top electrodes for translating vertical movement of the first set of top electrodes under electrostatic contraction the elemental substrate to vertical displacement of the first set of movable reflective rigid plates kept in parallel to the top reference plane; and

a second set of displacement translators adapted to connect the second set of movable reflective rigid plates with the second set of top electrodes for translating vertical movement of the second set of top electrodes under electrostatic contraction with the elemental substrate to vertical displacement of the second set of movable reflective rigid plates kept in parallel to the top reference plane.

9. The TWDM element according to claim 1 , wherein the first set of movable reflective rigid plates and the second set of movable reflective rigid plates are configured in any one of planar shapes comprising square, rectangle, circle, ellipse and polygons.

10. The TWDM element according to claim 1 , wherein the first set of top reflective surfaces and the second set of top reflective surfaces are made from any one or combination of reflective metals comprising silver, aluminum, copper, titanium, platinum, gold and their alloys.

11. The TWDM element according to claim 1 , wherein the elemental substrate is made from any one of semiconductors comprising silicon, germanium, arsenic and their compounds.

12. The TWDM element according to claim 3 , wherein the first set of top electrodes and the second set of top electrodes are made from any one or combination of conductive materials comprising silver, aluminum, copper, titanium, platinum, gold, nickel and cobalt.

13. The TWDM element according to claim 7 , wherein the first set of reinforcing plates and the second set of reinforcing plates are made from a combination of metals or dielectric materials comprising oxides, nitrides, carbides and carbon.

14. A tri wavelength diffractive modulation (TWDM) imager, comprising:

a plurality of TWDM elements according to claim 1 in a regularly spaced planar array configuration;

a planar substrate serving as an elemental substrate shared by the plurality of the TWDM elements; and

a global driving circuitry built into the planar substrate adapted to coordinate and drive an elemental driving circuitries in association with the TWDM elements.

15. The TWDM imager according to claim 14 , further comprising a planar band-pass filter array composed of a first band-pass filter element, a second band-pass filter element and a third band-pass filter element, in a regularly-spaced spatial configuration and each aligned with one of the TWDM elements, adapted to receive the incident electromagnetic radiation before the TWDM elements, wherein

the first band-pass filter element is adapted to block defined portion of the incident electromagnetic radiation in spectrum outside selected vicinity of a first distinguished wavelength;

the second band-pass filter element is adapted to block defined portion of the incident electromagnetic radiation in spectrum outside selected vicinity of a second distinguished wavelength; and

the third band-pass filter element is adapted to block defined portion of the incident electromagnetic radiation in spectrum outside selected vicinity of a third distinguished wavelength.

16. The TWDM imager according to claim 14 , wherein the planar band-pass filter array is made from any one of polymeric materials comprising Diazidonaphthoquinone (DNQ)-novolac photoresist, pigment, dye, and compounds comprising ZnS and Cryolite, and each band-pass filter element in the planar band-pass filter array is further associated with a micro lens vertically aligned with a corresponding TWDM element 100 in the first direction.

17. A method for temporally modulating by using the TWDM element according to claim 1 , comprising:

during a first sub duration of radiation in a first distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the first set of movable reflective rigid plates to the first position but keeping the second set of movable reflective rigid plates at the zero position for providing maximum diffraction;

during a second sub duration of radiation in a second distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the second set of movable reflective rigid plates to the second position but keeping the first set of movable reflective rigid plates at the zero position for providing maximum diffraction; and

during a third sub duration of radiation in a third distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the first set of movable reflective rigid plates to the first position and the second set of movable reflective rigid plates to the second position for providing maximum diffraction.

18. A method for temporally modulating by using the TWDM imager according to claim 14 , comprising:

during a first sub duration of radiation in a first distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the first set of movable reflective rigid plates to the first position but keeping the second set of movable reflective rigid plates at the zero position for providing maximum diffraction, independently on each TWDM element in the TWDM imager;

during a second sub duration of radiation in a second distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the second set of movable reflective rigid plates to the second position but keeping the first set of movable reflective rigid plates at the zero position for providing maximum diffraction, independently on each TWDM element in the TWDM imager; and

during a third sub duration of radiation in a third distinguished wavelength, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and displacing the first set of movable reflective rigid plates to the first position and the second set of movable reflective rigid plates to the second position for providing maximum diffraction, independently on each TWDM element in the TWDM imager.

19. A method for spatially modulating by using the TWDM imager according to claim 14 , comprising synchronized steps of:

in alignment with the first band-pass filter, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and then displacing the first set of movable reflective rigid plates to the first position but keeping the second set of movable reflective rigid plates at the zero position for providing maximum diffraction;

in alignment with the second band-pass filter elements, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and then displacing the second set of movable reflective rigid plates to the second position but keeping the first set of movable reflective rigid plates at the zero position for providing maximum diffraction; and

in alignment with the third band-pass filter elements, placing the first set of movable reflective rigid plates and the second set of movable reflective rigid plates both at the zero position for providing maximum reflection, and then displacing the first set of movable reflective rigid plates to the first position and the second set of movable reflective rigid plates to the second position or providing maximum diffraction.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2016
From: SHANGHAI LEXVU OPTO MICROELECTRONICS TECHNOLOGY CO., LTD.
To: XI'AN YISHEN OPTOELECTRONICS TECHNOLOGY CO., LTD.
Reel/Frame 037970/0289 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2010
From: HUANG, HERB HE
To: SHANGHAI LEXVU OPTO MICROELECTRONICS TECHNOLOGY CO., LTD.
Reel/Frame 025599/0481 →
Continuity (2)
Provisional Application 61149184 · Feb 2, 2009
Related Publication 20100195186A1 · Aug 5, 2010