Claims
- 1. An electrooptic waveguide for an optical signal, said optical signal including a horizontally oriented component TE and a vertically oriented component TM, said waveguide comprising a plurality of control electrodes, an optical waveguide core defining a primary axis of propagation, and an electrooptic cladding at least partially surrounding said core, wherein:said control electrodes are positioned to generate a contoured electric field across said cladding; said cladding is poled along a poling contour; at least one of said contoured electric field and said poling contour is asymmetric relative to a plane intersecting said waveguide core and extending along said primary axis of propagation; and said asymmetry defines a substantially polarization-independent waveguide structure along said primary axis of propagation of said electrooptic clad waveguide.
- 2. An electrooptic waveguide as claimed in claim 1 wherein said contoured electric field and said poling contour are asymmetric relative to said plane intersecting said waveguide core.
- 3. An electrooptic waveguide as claimed in claim 2 wherein said electric field and said poling lines follow a common contour.
- 4. An electrooptic waveguide as claimed in claim 1 wherein said contoured electric field is asymmetric relative to said plane intersecting said waveguide core.
- 5. An electrooptic waveguide as claimed in claim 1 wherein said poling contour is asymmetric relative to said plane intersecting said waveguide core.
- 6. An electrooptic waveguide as claimed in claim 1 wherein said intersecting plane is normal to a surface of said waveguide core.
- 7. An electrooptic waveguide as claimed in claim 1 wherein respective orientations of said contoured electric field and said poling contour are configured to compensate for an optical birefringence of an electrooptic cladding material defining said cladding such that a TM mode index corresponding to the indices of refraction for a vertically oriented component TM of said optical signal in said cladding is substantially equal to a TE mode index corresponding to the indices of refraction for a horizontally oriented component TE of said optical signal in said cladding.
- 8. An electrooptic waveguide as claimed in claim 1 wherein said electrooptic cladding defines at least two cladding regions on opposite sides of said waveguide core and wherein said contoured electric field comprises:a vertical electric field component within a first one of said pair cladding regions that is larger than a vertical component in a second one of said cladding regions; and a horizontal electric field component within said first cladding region that is smaller than a horizontal component in said second cladding region.
- 9. An electrooptic waveguide for an optical signal, said optical signal including a horizontally oriented component TE and a vertically orientedcomponent TM, said waveguide comprising a plurality of control electrodes, an electrooptic optical waveguide core defining a primary axis of propagation, and a cladding at least partially surrounding said core, wherein:said control electrodes are positioned to generate a contoured electric field across said core; said core is poled along a poling contour; at least one of said contoured electric field and said poling contour is asymmetric relative to a plane intersecting said waveguide core and extending along said primary axis of propagation; and said asymmetry defines a substantially polarization-independent waveguide structure along said primary axis of propagation of said electrooptic clad waveguide.
- 10. An electrooptic waveguide as claimed in claim 9 wherein said cladding comprise a substantially non-electrooptic material.
- 11. An electrooptic waveguide as claimed in claim 9 wherein said cladding comprises an electrooptic material.
- 12. An integrated optical device comprising an optical input, an optical output, and an electrooptic waveguide for an optical signal, said optical signal including a horizontally oriented component TE and a vertically oriented component TM, said waveguide comprising a plurality of control electrodes, an optical waveguide core defining a primary axis of propagation, and an electrooptic cladding at least partially surrounding said core, wherein:said control electrodes are positioned to generate a contoured electric field across said cladding; said cladding is poled along a poling contour; and at least one of said contoured electric field and said poling contour are asymmetric relative to a plane intersecting said waveguide core and extending along said primary axis of propagation.
CROSS-REFERENCE TO RELATED APPLICATIONS AND INCORPORATION BY REFERENCE
This application is a continuation-in-part of U.S. patent application Ser. No. 09/916,238 (BAT 0036 PA), filed Jul. 26, 2001 now U.S. Pat. No. 6,687,425 and is related to U.S. patent application Ser. No. 10/098,731, filed Mar. 15, 2002, and 09/777,439, filed Feb. 6, 2001, now U.S. Pat. No. 6,610,219, the three disclosures of which are incorporated herein by reference.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/916238 |
Jul 2001 |
US |
Child |
10/098730 |
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US |