Claims
- 1. In an optical laser or amplifier, the improvement comprising the inclusion of an emissive layer that includes a waveguide comprised of an electroluminescent material.
- 2. The optical laser or amplifier according to claim 1, wherein said laser or amplifier further comprises at least one grating.
- 3. The optical laser or amplifier according to claim 1, wherein said grating is comprised of an optical nonlinear second-order polymer, such that said grating can be tuned or de-tuned.
- 4. The optical laser or amplifier according to claim 1, wherein said emissive layer includes a polymer or compound selected from the group consisting of polymers or compounds depicted in FIG. 1, FIGS. 2A-H, and FIGS. 3A-F.
- 5. An optical laser or amplifier comprising an emissive layer that includes a waveguide comprised of an electroluminescent material.
- 6. The optical laser or amplifier according to claim 5, wherein said electroluminescent material is an optical nonlinear second-order polymer.
- 7. The optical laser or amplifier according to claim 5, wherein said laser or amplifier further comprises at least one grating.
- 8. The optical laser or amplifier according to claim 7, wherein said grating is comprised of an optical nonlinear second-order polymer, such that said grating can be tuned.
- 9. The optical laser or amplifier according to claim 7, wherein said laser or amplifier further includes an electron injecting layer.
- 10. The optical laser or amplifier according to claim 7, wherein said laser or amplifier further include a hole injecting layer.
- 11. The optical laser or amplifier according to claim 7, wherein said laser or amplifier further includes a cathode.
- 12. The optical laser or amplifier according to claim 7, wherein said laser or amplifier further includes a hole injecting electrode.
- 13. The optical laser or amplifier according to claim 7, wherein said laser or amplifier further includes an anode.
- 14. The optical laser or amplifier according to claim 7, wherein said emissive layer includes a polymer or compound selected from the group consisting of polymers or compounds depicted in FIG. 1, FIGS. 2A-H, and FIGS. 3A-F.
- 15. The optical laser or amplifier according to claim 7, wherein said optical nonlinear second-order polymer is selected from a polymer that:
(a) has the structure 4wherein Z is a polymer backbone, S is a spacer attached to Z, and C is a stilbene chromophore; (b) is depicted in or comprised of the polymers and compounds in FIGS. 2A-H or FIGS. 3A-F; and (c) is an optical nonlinear second-order polymer doped with a chromophore that is electroluminescent; and (d) is an electroluminescent polymer doped with a chromophore that exhibits optical nonlinear second-order properties.
- 16. The optical laser or amplifier according to claim 15, wherein Z is
- 17. The optical laser or amplifier according to claim 15, wherein S is a carbon chain comprising from 0 to 30 atoms.
- 18. The optical laser or amplifier according to claim 15, wherein C is dialkyl-amino-sulfone-stilbene.
- 19. An optical laser or amplifier that has the structure depicted in FIG. 6.
- 20. An optical laser or amplifier that has the structure depicted in FIG. 9.
- 21. An optical laser or amplifier comprising:
(a) an emissive layer that includes a waveguide comprised of an electroluminescent material; (b) at least two gratings.
- 22. The optical laser or amplifier according to claim 21, wherein said electroluminescent material is an optical nonlinear second-order polymer.
- 23. The optical laser or amplifier according to claim 21, wherein at least one of said gratings is comprised of an optical nonlinear second-order polymer, such that said grating can be tuned or de-tuned.
- 24. The optical laser or amplifier according to claim 21, wherein both of said gratings are each comprised of either the same or a different optical nonlinear second-order polymer than is present in the emissive layer.
- 25. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further includes an electron injecting layer.
- 26. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further includes a hole injecting layer.
- 27. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further includes a cathode.
- 28. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further comprises one or more means for creating an electric field.
- 29. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further includes a hole injecting electrode.
- 30. The optical laser or amplifier according to claim 21, wherein said laser or amplifier further includes an anode.
- 31. The optical laser or amplifier according to claim 21, wherein said emissive layer includes a polymer or compound selected from the group consisting of polymers or compounds depicted in FIG. 1, FIGS. 2A-H, and FIGS. 3A-F.
- 32. The optical laser or amplifier according to claim 21, wherein said optical nonlinear second-order polymer is selected from a polymer that:
(a) has the structure 6wherein Z is a polymer backbone, S is a spacer attached to Z, and C is a stilbene chromophore; (b) is depicted in or comprised of the polymers and compounds in FIGS. 2A-H or FIGS. 3A-F; and (c) is an optical nonlinear second-order polymer doped with a chromophore that is electroluminescent; and (d) is an electroluminescent polymer doped with a chromophore that exhibits optical nonlinear second-order properties.
- 33. The optical laser or amplifier according to claim 32, wherein Z is
- 34. The optical laser or amplifier according to claim 32, wherein S is a carbon chain comprising from 0 to 30 atoms.
- 35. The optical laser or amplifier according to claim 32, wherein C is dialkyl-amino-sulfone-stilbene.
- 36. A device comprising more than one optical laser or amplifier according to claim 5, wherein said optical lasers or amplifiers are stacked.
- 37. A device comprising more than one optical laser or amplifier according to claim 5, wherein said optical lasers or amplifiers are present in an array.
- 38. A device according to claim 37, wherein said device comprises more than one array.
- 39. A device according to claim 38, wherein said arrays are stacked.
- 40. A method of producing an optical laser or amplifier according to claim 5, wherein said method comprises the use of a fabrication technique selected from the group consisting of laser writing and photobleaching.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of provisional U.S. patent application Ser. No. 60/187,279 filed Mar. 6, 2000.
GOVERNMENT RIGHTS IN THE INVENTION
[0002] The invention was made with Government support under Agreement No. ______, awarded May 11, 2000 by the Ballistic Missile Defense Organization, U.S. Department of Defense to Alireza Gharavi of Shayda Technologies, for a project entitled “Mid-Infrared Stacked Waveguide Laser Arrays with Organic Light Emitting Diodes.” Accordingly, the government may have certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60187279 |
Mar 2000 |
US |