Claims
- 1. An optical isolator core comprising:
a first polarizer configured to receive incident light traveling along a path and refract said incident light into o-rays and e-rays; a rotator disposed along said path and configured to rotate the polarization planes of said o-rays and e-rays; a second polarizer disposed along said path and having an optic axis approximately 45° apart from said first polarizer and having a wedge cutting angle substantially the same as said first polarizer; and a correction element of birefringent material having a length and an optic axis having a cutting angle, wherein said length and said optic axis angle are chosen to compensate for differential group delay and walk-off introduced by said first and second polarizers.
- 2. The isolator core of claim 1, wherein said first and said second polarizers each have approximately the same wedge angle.
- 3. The isolator core of claim 2, wherein said first polarizer has an optic axis angle of approximately +/−45°.
- 4. The isolator core of claim 3, wherein said second polarizer has an optic angle of approximately 0° or 90°.
- 5. The optical isolator of claim 1, wherein a distance traveled by said o-rays and said e-rays through said correction element is equal to said length of the correction element multiplied by the tangent of said predetermined angle.
- 6. The optical isolator of claim 1, wherein said correction element further includes an optical plane in which said o-rays and said e-rays travel, wherein said optical plane is aligned with or perpendicular to said optic axis of said second polarizer.
- 7. The optical isolator of claim 1, wherein said correction element comprises a single piece of material.
- 8. The optical isolator of claim 1, wherein said correction element is configured such that said e- and o-rays are refracted such that said e- and o-rays intersect at a point proximate to a distal face of said correction element.
- 9. An optical isolator adapted for receiving light transmitted through the isolator in a forward direction comprising:
a first polarizer configured to separate light incident in the forward direction into at least one o-ray and at least one e-ray; a polarization rotator; a second polarizer; and a correction element having a crystal optic axis which lies in a plane defined by said at least one e-ray and said at least one o-ray.
- 10. The optical isolator of claim 9 wherein said at least one o-ray and said at least one e-ray travel through said isolator separated by a walk-off distance and said correction element is configured to substantially eliminate said walk-off distance between said at least one o-ray and said e-ray exiting said second polarizer.
- 11. The optical isolator of claim 9 wherein said correction element is configured to substantially eliminate differential group delay.
- 12. The optical isolator of claim 9 wherein said first polarizer has a crystal optic axis angle of approximately +/−45°.
- 13. The optical isolator of claim 9 wherein said second polarizer has a crystal optic axis angle of approximately 0° or 90°.
- 14. The optical isolator of claim 13 wherein said correction element has a crystal optic axis α which lies with the plane defined by said at least one o-ray and said at least one e-ray.
- 15. The optical isolator of claim 9 wherein said correction element has a length L and a crystal optic axis angle α which are selected such that said at least one e-ray is refracted by said correction element such that the respective light paths of said e- and o-rays intersect at a location proximate to a face of said correction element.
- 16. The optical isolator of claim 15 wherein said o-rays and said e-rays are refracted by said correction element.
- 17. The optical isolator of claim 15 wherein said at least one o-ray and said at least one e-ray intersect at an angle β.
- 18. The optical isolator of claim 15 wherein said at least one o-ray and said at least one e-ray exit said second polarizer separated by a walk-off distance which is approximately equal to said length L of the correction element multiplied by the tangent of angle β.
- 19. The optical isolator of claim 18 wherein said tangent of angle β is defined as
- 20. The optical isolator of claim 9, wherein said first and second polarizers comprise birefringent material.
- 21. The optical isolator of claim 9, wherein said first polarizer, said polarization rotator, said second polarizer, and said correction element are arranged in a sequence along an axis of said isolator.
- 22. An optical isolator adapted for receiving light transmitted through the isolator on a forward direction comprising:
a first polarizer configured to separate light incident in the forward direction into at least one o-ray and at least one e-ray; a polarization rotator; a second polarizer configured to refract at said at least one o-ray and at least one e-ray exit such that they exit said second polarizer in substantially parallel light paths separated by a walk-off distance; and a correction element having a length and a crystal optic axis which lies in a plane defined by said at least one o-ray and at least one e-ray, and wherein at least one of said at least one o-ray and at least one e-ray exiting said second polarizer are refracted by said correction element such that their respective light paths intersect at an angle β.
- 23. The optical isolator of claim 22 wherein said correction element is configured to substantially eliminate said walk-off distance between said at least one o-ray and at least one e-ray exiting said second polarizer.
- 24. The optical isolator of claim 22 wherein said correction element is configured to substantially eliminate differential group delay.
- 25. The optical isolator of claim 22 wherein said first polarizer has a crystal optic axis angle of approximately +/−45° relative to a beveled of said first polarizer.
- 26. The optical isolator of claim 22 wherein said second polarizer has a crystal optic axis angle of approximately 0° or 90° relative to a beveled of said second polarizer.
- 27. The optical isolator of claim 22 wherein said polarization rotator comprises a 45° Faraday rotator.
- 28. The optical isolator of claim 22 wherein said correction element has a length L and a crystal optic axis cutting angle (x which are selected such that said at least one o-ray or said at least one e-ray are refracted by said correction element such that their respective light paths intersect at a location proximate to a face of said correction element.
- 29. The optical isolator of claim 22 wherein both of said at least one o-ray or said at least one e-ray are refracted by said correction element.
- 30. The optical isolator of claim 22 wherein said at least one o-ray and said at least one e-ray intersect at an angle β.
- 31. The optical isolator of claim 30 wherein said at least one o-ray and said at least one e-ray exit said second polarizer separated by a walk-off distance which is approximately equal to said length L multiplied by the tangent of angle β.
- 32. The optical isolator of claim 31 wherein said tangent of angle β is defined as
- 33. The optical isolator of claim 22, wherein said first and second polarizers comprise birefringent material.
- 34. The optical isolator of claim 22, wherein said first polarizer, said polarization rotator, said second polarizer, and said correction element are arranged in a sequence along an axis of said isolator.
- 35. A method for receiving light passing through an optical isolator in a forward direction through the isolator comprising:
separating the light traveling in a forward direction into at least one o-ray and said at least one e-ray; rotating the polarization of said at least one o-ray and said at least one e-ray; refracting said at least one o-ray and said at least one e-ray such that they are in substantially parallel paths; and passing said at least one o-ray and said at least one e-ray through a correction element having an optic axis in a plane defined by said substantially parallel at least one o-ray and said at least one e-ray exiting said second polarizer.
- 36. The method of claim 35 wherein said correction element is configured to substantially eliminate said walk-off distance between said at least one o-ray and at least one e-ray exiting said second polarizer.
- 37. The method of claim 35 wherein said correction element is configured to substantially eliminate the first order polarization mode dispersion, namely DGD.
- 38. The method of claim 35 wherein said correction element has a length L and a crystal optic axis cutting angle α which are selected such that said at least one o-ray and said at least one e-ray are refracted by said correction element such that their respective light paths intersect at a location proximate to a face of said o correction element.
- 39. The method of claim 38 wherein said at least one o-ray and said at least one e-ray exit separated by a walk-off distance which is approximately equal to said length L multiplied by the tangent of angle β.
- 40. The method of claim 39 wherein said tangent of angle β is defined as
- 41. An optical isolator comprising:
means for separating light traveling in a forward direction into at least one o-ray and said at least one e-ray; means for rotating the polarization of said at least one o-ray and said at least one e-ray; means for refracting said at least one o-ray and said at least one e-ray such that they are in substantially parallel paths; and means for passing said at least one o-ray and said at least one e-ray through a correction element having an optic axis in a plane defined by said substantially parallel at least one o-ray and said at least one e-ray exiting said second polarizer.
- 42. The optical isolator of claim 41 wherein said correction element is configured to substantially eliminate said walk-off distance between said at least one o-ray and at least one e-ray exiting said second polarizer.
- 43. The optical isolator of claim 41 wherein said correction element is configured to substantially eliminate the first order polarization mode dispersion, namely DGD.
- 44. The optical isolator of claim 41 wherein said correction element has a length L and a crystal optic axis cutting angle α which are selected such that said at least one o-ray and said at least one e-ray are refracted by said correction element such that their respective light paths intersect at a location proximate to a face of said correction element.
- 45. The optical isolator of claim 44 wherein said at least one o-ray and said at least one e-ray exit separated by a walk-off distance which is approximately equal to said length L multiplied by the tangent of angle β.
- 46. The optical isolator of claim 45 wherein said tangent of angle β is defined as:
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/240,441, filed Oct. 13, 2000 (Attorney Docket No, NFCS-014P).
Provisional Applications (1)
|
Number |
Date |
Country |
|
60240441 |
Oct 2000 |
US |