Claims
- 1. A device for combining optical beams comprising:
a first beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction and a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction; a second beam angle turner which includes a third birefringent wedge with a third optic axis oriented in a third direction, a fourth birefringent wedge with a fourth optic axis oriented in a fourth direction different from the third direction, and a Faraday rotator disposed between the third and fourth wedges; and a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength, said WDM having a first surface facing the second wedge opposite the first wedge and a second surface facing the fourth wedge opposite the Faraday rotator.
- 2. The device according to claim 1:wherein the first direction forms an angle of 90° with the second direction; and wherein the third direction forms an angle of 45° with the fourth direction.
- 3. The device according to claim 1:wherein the first direction forms an angle of 90° with the second direction; and wherein the third direction forms an angle of 135° with the fourth direction.
- 4. The device according to claim 1, wherein:
first and second linearly polarized optical beams incident upon the first wedge opposite the second wedge are combined into a first polarization combined beam by the first beam angle turner and transmitted by the WDM; third and fourth linearly polarized optical beams incident upon the third wedge opposite the Faraday rotator are polarization rotated and combined into a second polarization combined beam by the second beam angle turner and reflected by the WDM; and the first and second polarization combined beams are combined into an exit beam, said exit beam exiting the device along an exit beam path through the second beam angle turner; the first and second optical beams have the first wavelength and mutually orthogonal polarizations; and the third and fourth optical beams have the second wavelength and mutually orthogonal polarizations; whereby reflected light reflected back along the exit beam path is isolated from the first, second, third, and fourth optical beams.
- 5. The device according to claim 4, further comprising:
first and second polarization maintaining (PM) fiber terminations facing the first wedge; third and fourth PM fiber terminations facing the third wedge; an exit beam optical fiber termination facing the third wedge disposed between the third and fourth PM fiber terminations; a first collimating lens disposed between the first wedge and the first and second PM fiber terminations; and a second collimating lens disposed between the third wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination; wherein the first and second optical beams are launched respectively from the first and second PM fiber terminations toward the first wedge; wherein the third and fourth optical beams are launched respectively from the third and fourth PM fiber terminations toward the third wedge; and wherein the exit beam is received at the exit beam optical fiber termination.
- 6. The device according to claim 5, wherein the first and second beam angle turners, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 7. The device according to claim 1, wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 8. A method of combining optical beams comprising:
providing a first beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction and a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction; providing a second beam angle turner which includes a third birefringent wedge with a third optic axis oriented in a third direction, a fourth birefringent wedge with a fourth optic axis oriented in a fourth direction different from the third direction, and a Faraday rotator disposed between the third and fourth wedges; providing a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength, said WDM having a first surface facing the second wedge opposite the first wedge and a second surface facing the fourth wedge opposite the Faraday rotator; receiving and combining in the first beam angle turner first and second linearly polarized optical beams having the first wavelength and mutually orthogonal polarizations to form a first polarization combined beam; receiving, polarization rotating, and combining in the second beam angle turner third and fourth linearly polarized optical beams having the second wavelength and mutually orthogonal polarizations to form a second polarization combined beam; transmitting the first and second optical beams through the WDM and reflecting the third and fourth optical beams from the second surface of the WDM; and combining the first and second polarization combined beams into an exit beam, said exit beam propagating along an exit beam path through the second beam angle turner; and whereby reflected light reflected back along the exit beam path is isolated from the first, second, third, and fourth optical beams.
- 9. The method according to claim 8:
wherein the first direction forms an angle of 90° with the second direction; and wherein the third direction forms an angle of 45° with the fourth direction.
- 10. The method according to claim 8:
wherein the first direction forms an angle of 90° with the second direction; and wherein the third direction forms an angle of 135° with the fourth direction.
- 11. The method according to claim 8, further comprising:
providing first and second polarization maintaining (PM) fiber terminations facing the first wedge and a first collimating lens disposed between the first and second PM fiber terminations and the first wedge; providing third and fourth PM fiber terminations and an exit beam optical fiber termination facing the third wedge and a second collimating lens disposed between the third wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination, the exit beam optical fiber termination being disposed between the third and fourth PM fiber terminations; launching the first and second optical beams from the first and second PM fiber terminations, respectively, through the first collimating lens toward the first wedge; launching the third and fourth optical beams from the third and fourth PM fiber terminations, respectively, through the second collimating lens toward the third wedge; and receiving the exit beam at the exit beam optical fiber termination.
- 12. The method according to claim 1, wherein the first and second beam angle turners, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 13. The method according to claim 11, wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 14. A device for combining optical beams comprising:
a beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction and a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction; a wavelength division multiplexer (WDM) that transmits light of a first wavelength and that reflects light of a second wavelength, the WDM having a first surface facing the first wedge opposite the second wedge; first and second polarization maintaining (PM) fiber terminations facing a second surface of the WDM opposite the first surface; a first collimating lens disposed between the second surface of the WDM and the first and second PM fiber terminations; third and fourth PM fiber terminations facing the second wedge opposite the first wedge; an exit beam optical fiber termination disposed between the third and fourth PM fiber terminations and facing the second wedge opposite the first wedge; and a second collimating lens disposed between the second wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination; wherein the first direction forms an angle of 90° with the second direction; and wherein the beam angle turner, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 15. The device according to claim 14, wherein:
first and second linearly polarized optical beams launched from the first and second PM fibers, respectively, collimated by the first collimating lens, and incident upon the second surface of the WDM with a first separation angle θ are transmitted by the WDM; third and fourth linearly polarized optical beams launched from the third and fourth PM fibers, respectively, collimated by the second collimating lens, and incident upon the second wedge opposite the first wedge with a separation angle 2θ at incidence are deflected by the beam angle turner, incident upon the first surface of the WDM with a second separation angle θ, and reflected by the WDM; the first and second transmitted optical beams and the third and fourth reflected optical beams are combined into a polarization combined exit beam by the beam angle turner, said exit beam exiting the device along an exit beam path through the beam angle turner; the exit beam is received at the exit beam optical fiber termination; the first and second optical beams have the first wavelength and mutually orthogonal polarizations; the third and fourth optical beams have the second wavelength and mutually orthogonal polarizations.
- 16. The device according to claim 14, wherein the first and second wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 17. A method of combining optical beams comprising:
providing a beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction and a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction; providing a wavelength division multiplexer (WDM) that transmits light of a first wavelength and that reflects light of a second wavelength, the WDM having a first surface facing the first wedge opposite the second wedge; providing first and second polarization maintaining (PM) fiber terminations facing a second surface of the WDM opposite the first surface; providing a first collimating lens disposed between the second surface of the WDM and the first and second PM fiber terminations; providing third and fourth PM fiber terminations facing the second wedge opposite the first wedge; providing an exit beam optical fiber termination disposed between the third and fourth PM fiber terminations and facing the second wedge opposite the first wedge; providing a second collimating lens disposed between the second wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination; launching first and second linearly polarized optical beams having the first wavelength and mutually orthogonal polarizations from the first and second PM fiber terminations, respectively, through the first collimating lens toward the second surface of the WDM with a first separation angle θ at incidence upon the second surface; transmitting the first and second optical beams through the WDM; launching third and fourth linearly polarized optical beams having the second wavelength and mutually orthogonal polarizations from the third and fourth PM fiber terminations, respectively, through the second collimating lens toward the second wedge with a separation angle 2θ at incidence upon the second wedge; deflecting the third and fourth optical beams in the beam angle turner such that the third and fourth optical beams are incident upon the first surface of the WDM with a second separation angle θ at incidence; reflecting the third and fourth optical beams from the first surface; combining the transmitted first and second optical beams and the reflected third and fourth optical beams to form a polarization combined exit beam, said exit beam propagating along an exit beam path through the beam angle turner; and receiving the exit beam at the exit beam optical fiber termination; wherein the first direction forms an angle of 90° with the second direction; and wherein the beam angle turner, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 18. The method according to claim 17, wherein the first and second wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 19. A device for combining optical beams comprising:
a first beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction, a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction, and a first Faraday rotator disposed between the first and second wedges; a second beam angle turner which includes a third birefringent wedge with a third optic axis oriented in a third direction, a fourth birefringent wedge with a fourth optic axis oriented in a fourth direction different from the third direction, and a second Faraday rotator disposed between the third and fourth wedges; and a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength, said WDM having a first surface facing the second wedge opposite the first Faraday rotator and a second surface facing the fourth wedge opposite the second Faraday rotator.
- 20. The device according to claim 19:
wherein the first optic axis forms an angle of 45° with the second optic axis; and wherein the third optic axis forms an angle of 45° with the fourth optic axis.
- 21. The device according to claim 19:
wherein the first optic axis forms an angle of 135° with the second optic axis; and wherein the third optic axis forms an angle of 135° with the fourth optic axis.
- 22. The device according to claim 19, wherein:
first and second linearly polarized optical beams incident upon the first wedge opposite the first Faraday rotator are polarization rotated and combined into a first polarization combined beam by the first beam angle turner and transmitted by the WDM; third and fourth linearly polarized optical beams incident upon the third wedge opposite the second Faraday rotator are polarization rotated and combined into a second polarization combined beam by the second beam angle turner and reflected by the WDM; and the first and second polarization combined beams are combined into an exit beam, said exit beam exiting the device along an exit beam path through the second beam angle turner; the first and second optical beams have the first wavelength and mutually orthogonal polarizations; and the third and fourth optical beams have the second wavelength and mutually orthogonal polarizations; whereby reflected light reflected back along the exit beam path is isolated from the first, second, third, and fourth optical beams.
- 23. The device according to claim 22, further comprising:
first and second polarization maintaining (PM) fiber terminations facing the first wedge; third and fourth PM fiber terminations facing the third wedge; an exit beam optical fiber termination facing the third wedge disposed between the third and fourth PM fiber terminations; a first collimating lens disposed between the first wedge and the first and second PM fiber terminations; and a second collimating lens disposed between the third wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination; wherein the first and second optical beams are launched respectively from the first and second PM fiber terminations toward the first wedge; wherein the third and fourth optical beams are launched respectively from the third and fourth PM fiber terminations toward the third wedge; and wherein the exit beam is received at the exit beam optical fiber termination.
- 24. The device according to claim 23, wherein the first and second beam angle turners, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 25. The device according to claim 19, wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 26. A method of combining optical beams comprising:
providing a first beam angle turner which includes a first birefringent wedge with a first optic axis oriented in a first direction, a second birefringent wedge with a second optic axis oriented in a second direction different from the first direction, and a first Faraday rotator disposed between the first and second wedges; providing a second beam angle turner which includes a third birefringent wedge with a third optic axis oriented in a third direction, a fourth birefringent wedge with a fourth optic axis oriented in a fourth direction different from the third direction, and a second Faraday rotator disposed between the third and fourth wedges; providing a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength, said WDM having a first surface facing the second wedge opposite the first Faraday rotator and a second surface facing the fourth wedge opposite the second Faraday rotator; receiving, polarization rotating, and combining in the first beam angle turner first and second linearly polarized optical beams having the first wavelength and mutually orthogonal polarizations to form a first polarization combined beam; receiving, polarization rotating, and combining in the second beam angle turner third and fourth linearly polarized optical beams having the second wavelength and mutually orthogonal polarizations to form a second polarization combined beam; transmitting the first and second optical beams through the WDM and reflecting the third and fourth optical beams from the second surface of the WDM; and combining the first and second polarization combined beams into an exit beam, said exit beam propagating along an exit beam path through the second beam angle turner; and whereby reflected light reflected back along the exit beam path is isolated from the first, second, third, and fourth optical beams.
- 27. The method according to claim 26:
wherein the first direction forms an angle of 45° with the second direction; and wherein the third direction forms an angle of 45° with the fourth direction.
- 28. The method according to claim 26:
wherein the first direction forms an angle of 135° with the second direction; and wherein the third direction forms an angle of 135°0 with the fourth direction.
- 29. The method according to claim 26, further comprising:
providing first and second polarization maintaining (PM) fiber terminations facing the first wedge and a first collimating lens disposed between the first and second PM fiber terminations and the first wedge; providing third and fourth PM fiber terminations and an exit beam optical fiber termination facing the third wedge and a second collimating lens disposed between the third wedge and the third and fourth PM fiber terminations and the exit beam optical fiber termination, the exit beam optical fiber termination being disposed between the third and fourth PM fiber terminations; launching the first and second optical beams from the first and second PM fiber terminations, respectively, through the first collimating lens toward the first wedge; launching the third and fourth optical beams from the third and fourth PM fiber terminations, respectively, through the second collimating lens toward the third wedge; and receiving the exit beam at the exit beam optical fiber termination.
- 30. The method according to claim 29, wherein the first and second beam angle turners, WDM, first and second collimating lenses, first, second, third, and fourth PM fiber terminations, and the exit beam optical fiber termination are integrated into a single module.
- 31. The method according to claim 26 wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 32. A device for combining optical beams comprising:
a first beam angle turner which includes first and second birefringent wedges and a first Faraday rotator disposed between the first and second wedges; a second beam angle turner which includes third and fourth birefringent wedges and a second Faraday rotator disposed between the third and fourth wedges; a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength; wherein the first and second wedges and the first Faraday rotator are disposed in relation to each other and contoured such that first and second optical beams of the first wavelength incident on the first wedge at a first prescribed separation angle are combined into a first combined exit beam at the first wavelength that exits the second wedge opposite the first Faraday rotator; wherein the third and fourth wedges and the second Faraday rotator are disposed in relation to each other and contoured such that third and fourth optical beams of the second wavelength incident on the third wedge at a second prescribed separation angle are combined into a second combined exit beam that exits the fourth wedge opposite the second Faraday rotator; wherein the first beam angle turner, the second beam angle turner and the WDM are disposed in relation to each other such that that the first combined exit beam that exits the second wedge passes through the WDM and is incident upon the fourth wedge opposite the second Faraday rotator and such that the second combined exit beam that exits the fourth wedge is reflected by the WDM and is incident upon the fourth wedge opposite the second Faraday rotator; wherein the third and fourth wedges, the second Faraday rotator and the WDM are further disposed in relation to each other and contoured such that, the first combined exit beam passes through the second beam angle turner and exits the third wedge and follows an exit beam path intersecting the third wedge opposite the second Faraday rotator, the second combined exit beam passes back through the second beam angle turner and exits the third wedge opposite the second Faraday rotator and joins the exit beam path, light of the first wavelength reflected back along the exit beam path passes through the second beam angle turner and passes through the WDM, and light of the second wavelength that is reflected back along the exit beam path passes through the second beam angle turner, is reflected from the WDM and passes again back through the second beam angle turner and exits the third wedge without interfering with either the third or fourth incident beams; wherein the first and second wedges, the first Faraday rotator and the WDM are further disposed in relation to each other and are contoured such that the reflected light of the first wavelength, that is reflected back along the exit beam path through the second beam angle turner and the WDM, passes through the first beam angle turner and exits the first wedge without interfering with either the first or second incident beams; whereby the first combined exit beam comprising the first and second incident beams of the first wavelength and the second combined exit beam comprising the third and fourth incident beams of the second wavelength are combined into a third combined exit beam that follows the exit beam path and that includes the first and second wavelengths; and whereby reflected light reflected back along the exit beam path is isolated from the first, second, third and fourth incident beams.
- 33. The device according to claim 32, wherein:
each of the first, second, third, and fourth wedges is contoured so as to have an optic axis with a prescribed orientation; the optic axis of the first wedge forms an angle of 45° with the optic axis of the second wedge; and the optic axis of the third wedge forms an angle of 45° with the optic axis of the fourth wedge.
- 34. The device according to claim 32, wherein:
each of the first, second, third, and fourth wedges is contoured so as to have an optic axis with a prescribed orientation; the optic axis of the first wedge forms an angle of 135° with the optic axis of the second wedge; and the optic axis of the third wedge forms an angle of 135° with the optic axis of the fourth wedge.
- 35. The device according to claim 32, wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
- 36. A method for combining optical beams comprising:
providing a first beam angle turner which includes first and second birefringent wedges and a first Faraday rotator disposed between the first and second wedges; providing a second beam angle turner which includes third and fourth birefringent wedges and a second Faraday rotator disposed between the third and fourth wedges; providing a wavelength division multiplexer (WDM) that is disposed between the first and second beam angle turners and that transmits light of a first wavelength and that reflects light of a second wavelength; receiving and combining into a first combined exit beam first and second optical beams of the first wavelength; receiving and combining into a second combined exit beam third and fourth optical beams of the second wavelength; transmitting the first combined exit beam and reflecting the second combined exit beam; wherein the first and second wedges and the first Faraday rotator are disposed in relation to each other and contoured such that the first and second optical beams incident on the first wedge at a first prescribed separation angle are combined into the first combined exit beam at the first wavelength that exits the second wedge opposite the first Faraday rotator; wherein the third and fourth wedges and the second Faraday rotator are disposed in relation to each other and contoured such that the third and fourth optical beams incident on the third wedge at a second prescribed separation angle are combined into the second combined exit beam that exits the fourth wedge opposite the second Faraday rotator; wherein the first beam angle turner, the second beam angle turner and the WDM are disposed in relation to each other such that that the first combined exit beam that exits the second wedge passes through the WDM and is incident upon the fourth wedge opposite the second Faraday rotator and such that the second combined exit beam that exits the fourth wedge is reflected by the WDM and is incident upon the fourth wedge opposite the second Faraday rotator; wherein the third and fourth wedges, the second Faraday rotator and the WDM are further disposed in relation to each other and contoured such that, the first combined exit beam passes through the second beam angle turner and exits the third wedge and follows an exit beam path intersecting the third wedge opposite the second Faraday rotator, the second combined exit beam passes back through the second beam angle turner and exits the third wedge opposite the second Faraday rotator and joins the exit beam path, light of the first wavelength reflected back along the exit beam path passes through the second beam angle turner and passes through the WDM, and light of the second wavelength that is reflected back along the exit beam path passes through the second beam angle turner, is reflected from the WDM and passes again back through the second beam angle turner and exits the third wedge without interfering with either the third or fourth incident beams; wherein the first and second wedges, the first Faraday rotator and the WDM are further disposed in relation to each other and are contoured such that the reflected light of the first wavelength, that is reflected back along the exit beam path through the second beam angle turner and the WDM, passes through the first beam angle turner and exits the first wedge without interfering with either the first or second incident beams; whereby the first combined exit beam comprising the first and second incident beams of the first wavelength and the second combined exit beam comprising the third and fourth incident beams of the second wavelength are combined into a third combined exit beam that follows the exit beam path and that includes the first and second wavelengths; and whereby reflected light reflected back along the exit beam path is isolated from the first, second, third and fourth incident beams.
- 37. The method according to claim 36, wherein:
each of the first, second, third, and fourth wedges is contoured so as to have an optic axis with a prescribed orientation; the optic axes of the first and third wedges are oriented in a first direction; the optic axes of the second and fourth wedges are oriented in a second direction; and the first direction forms an angle of 45° with the second direction.
- 38. The method according to claim 36, wherein:
each of the first, second, third, and fourth wedges is contoured so as to have an optic axis with a prescribed orientation; the optic axes of the first and third wedges are oriented in a first direction; the optic axes of the second and fourth wedges are oriented in a second direction; and the first direction forms an angle of 135° with the second direction.
- 39. The method according to claim 36, wherein the first, second, third, and fourth wedges are composed of YVO4, Rutile, Calcite, LiNbO3, or any other birefringent crystal.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This non-provisional application claims priority to U.S. Provisional Application No. 60/276,748, filed Mar. 16, 2001, which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60276748 |
Mar 2001 |
US |