IP Library Granted Patent US 7,356,214
Granted Patent B2
US 7,356,214 · App. 11/087,382 · Granted Apr 8, 2008

Optical waveguide coupler for whispering-gallery-mode resonators

Assignee: OEwaves, Inc.
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Quick Facts
Patent No.
US 7,356,214
App. No.
11/087,382
Granted
Apr 8, 2008
Kind
B2
Abstract

This application describes whispering gallery modes resonators made of electro-optic materials that are optically coupled to one or two waveguide couplers.

Claims (29)

1. A device, comprising:

an optical resonator formed of an electro-optic material and shaped to support a whispering gallery mode circulating in a plane that is perpendicular to a crystal axis of the electro-optic material; and

a waveguide formed of the electro-optic material having a crystal axis perpendicular to a longitudinal direction of the waveguide and parallel to the crystal axis of the optical resonator, the waveguide located close to the resonator to evanescently couple with the optical resonator.

2. A device as in claim 1 , wherein the optical resonator is a lithium niobate micro resonator.

3. A device as in claim 1 , wherein the optical resonator comprises at least a portion of a spheroid.

4. A device as in claim 1 , wherein the optical resonator comprises at least a portion of a sphere.

5. A device as in claim 1 , wherein the optical resonator is a disk.

6. A device as in claim 1 , wherein the optical resonator is a ring.

7. A device as in claim 1 , further comprising a fiber coupled to an end facet of the waveguide.

8. A device, comprising:

an optical resonator formed of an electro-optic material and shaped to support a whispering gallery mode circulating in a plane that is perpendicular to a crystal axis of the electro-optic material; and

a waveguide formed of the electro-optic material having a crystal axis perpendicular to a longitudinal direction of the waveguide and perpendicular to the crystal axis of the optical resonator, the waveguide having an angled facet at a first end which is located close to the resonator to evanescently couple with the optical resonator.

9. A device as in claim 8 , wherein the optical resonator is a lithium niobate micro resonator.

10. A device as in claim 8 , wherein the optical resonator comprises at least a portion of a spheroid.

11. A device as in claim 8 , wherein the optical resonator comprises at least a portion of a sphere.

12. A device as in claim 8 , wherein the optical resonator is a disk.

13. A device as in claim 8 , wherein the optical resonator is a ring.

14. A device as in claim 8 , wherein the waveguide comprises an end facet at a second end opposite to the first end of the waveguide, the device further comprising a fiber coupled to an end facet at the second end.

15. A device as in claim 14 , wherein the waveguide couple input light into the resonator, the device further comprising:

a second waveguide formed of the electro-optic material having a crystal axis perpendicular to a longitudinal direction of the second waveguide and perpendicular to the crystal axis of the optical resonator, the second waveguide having an angled facet which is located close to the resonator to evanescently couple with the optical resonator to couple light out of the resonator.

16. A method, comprising:

providing an optical resonator formed of an electro-optic material with a crystal axis perpendicular to a plane in which a whispering gallery mode of the optical resonator circulates; and

using a waveguide, which is also formed of the electro-optic material, to effectuate a refractive index of guided light to be equal to or greater than a refractive index for the whispering gallery mode in the optical resonator to provide coupling between the optical resonator and the waveguide.

17. A method as in claim 16 , further comprising:

making a crystal axis of the waveguide to be parallel to the crystal axis of the optical resonator to match refractive indices of the optical resonator and the waveguide for light coupled therebetween.

18. A method as in claim 16 , wherein a crystal axis of the waveguide is perpendicular to the crystal axis of the optical resonator to make the refractive index of the waveguide greater than the refractive index of the optical resonator, the method further comprising:

using an angled facet on the waveguide to couple light polarized along the crystal axis of the optical resonator.

19. A method as in claim 16 , further comprising:

coupling an end facet of a fiber to an end facet of the waveguide to direct input light from the fiber into the waveguide.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Oct 13, 2016
From: PACIFIC WESTERN BANK (AS SUCCESSOR IN INTEREST BY MERGER TO SQUARE 1 BANK)
To: OEWAVES, INC.
Reel/Frame 040350/0076 →
SECURITY INTEREST Recorded Apr 24, 2015
From: OEWAVES, INC.
To: SQUARE 1 BANK
Reel/Frame 035497/0755 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 20, 2005
From: ILCHENKO, VLADIMIR
To: OEWAVES, INC.
Reel/Frame 016548/0153 →
Continuity (2)
Provisional Application 6055534800 · Mar 22, 2004
Related Publication 20050220411A1 · Oct 6, 2005