Claims
- 1. A multi-frequency light source comprising:
at least one laser configured to output a first light signal having a first frequency; an electro-optical modulator (EOM) comprising:
a waveguide having a first and a second end, the waveguide extending along a light propagation dimension; and a signal generator configured to apply a modulation signal to drive the EOM; a first mirror positioned in an optical path between the at least one laser and the first end of the waveguide, and a second mirror positioned at the second end of the waveguide; wherein
the waveguide includes a plurality of alternately poled optical domains, each optical domain having a width defined along the light propagation dimension, the plurality of optical domains collectively having a periodic width structure.
- 2. The multi-frequency light source according to claim 1, wherein the width of the optical domains is at least about 0.5 and is less than about 3 millimeters.
- 3. The multi-frequency light source according to claim 1, wherein the first mirror comprises a first number of alternating layers formed from a first material having a first index of refraction, and a second material having a second index of refraction, wherein the first and second indices of refraction fall on either side of an index of refraction of the waveguide.
- 4. The multi-frequency light source according to claim 3, wherein each layer is between 0.3-0.6 microns in thickness.
- 5. The multi-frequency light source according to claim 3, wherein the layers formed from the first material have a first thickness and the layers formed from the second material have a second thickness, the first and second thicknesses being different from one another.
- 6. The multi-frequency light source according to claim 3, wherein widths of the alternating layers increase in a direction away from the first end of the waveguide.
- 7. The multi-frequency light source according to claim 1, wherein the second mirror comprises a second number of alternating layers formed from a first material having a first index of refraction, and a second material having a second index of refraction, wherein the first and second indices of refraction fall on either side of an index of refraction of the waveguide.
- 8. The multi-frequency light source according to claim 1, wherein the periodic width structure has a periodicity of two and the waveguide comprises domains having alternating first and second widths along the light propagation dimension.
- 9. The multi-frequency light source according to claim 8, wherein the first and second widths are the same size.
- 10. The multi-frequency light source according to claim 8, wherein the first and second widths are of different size.
- 11. The multi-frequency light source according to claim 10, wherein the first width is at least twice as large as the second width.
- 12. The multi-frequency light source according to claim 10, wherein the first width is at least three times as large as the second width.
- 13. The multi-frequency light source according to claim 1, wherein the periodic width structure has a periodicity of six, each period of six comprising two repeated blocks of three domains each, the three domains having first, second and third widths.
- 14. The multi-frequency light source according to claim 13, wherein the second and third widths are the same, and are dissimilar from the first width.
- 15. The multi-frequency light source according to claim 1, wherein the periodic width structure has a periodicity of a number N and the waveguide comprises repeated blocks of domains having first through Nth widths which are all dissimilar to one another and wherein N>3.
- 16. The multi-frequency light source according to claim 1, wherein the modulation signal comprises multiple frequencies.
- 17. The multi-frequency light source according to claim 16, wherein the excitation signal comprises two frequencies, one of which is a multiple of the other.
- 18. The multi-frequency light source according to claim 16, wherein the modulation signal comprises three frequencies, two of which are multiples of a lowest of the three frequencies.
- 19. The multi-frequency light source according to claim 1, wherein the waveguide is formed by titanium doping a crystal.
- 20. The multi-frequency light source according to claim 19, wherein the titanium doped waveguide is doped with a gain medium.
- 21. The multi-frequency light source according to claim 20, wherein the gain medium comprises at least one from the group consisting of erbium and yttrium.
- 22. A wavelength division multiplexed optical communication system including a multi-frequency light source comprising:
at least one laser configured to output a first light signal having a first frequency; an electro-optical modulator (EOM) comprising:
a waveguide having a first end and a second end, the waveguide extending between said first and second ends along a light propagation dimension; a signal generator configured to apply a modulation signal to drive the EOM; a first mirror positioned in an optical path between the at least one laser and the first end of the waveguide, and a second mirror positioned at the second end of the waveguide; wherein
the waveguide is provided with a plurality of alternately poled optical domains, each optical domain having a width defined along the light propagation dimension, the plurality of optical domains collectively having a periodic width structure.
- 23. A time division multiplexed optical communication system including a multi-frequency light source comprising:
at least one laser configured to output a first light signal having a first frequency; an electro-optical modulator (EOM) comprising:
a waveguide having a first end and a second end, the waveguide extending between said first and second ends along a light propagation dimension; and a signal generator configured to apply a modulation signal to drive the EOM; a first mirror positioned in an optical path between the at least one laser and the first end of the waveguide, and a second mirror positioned at the second end of the waveguide; wherein
the waveguide is provided with a plurality of alternately poled optical domains, each optical domain having a width defined along the light propagation dimension, the plurality of optical domains collectively having a periodic width structure.
- 24. A optical modulator sub-assembly comprising:
an electro-optical modulator (EOM) comprising:
a waveguide having a first end and a second end, the waveguide extending along a light propagation dimension between the first and second ends; a signal generator configured to apply a modulation signal to drive the EOM; a first mirror situated at the first end of the waveguide; and a second mirror situated at the second end of the waveguide; wherein
the waveguide is provided with a plurality of alternately poled optical domains having a periodic width structure, and a duty cycle other than 50%.
- 25. The optical modulator sub-assembly of claim 24, wherein the modulation signal is a multi-frequency modulation signal.
- 26. The optical modulator sub-assembly of claim 25, wherein the waveguide comprises a gain medium.
- 27. A optical device comprising:
first and second optical cavities, the first and second optical cavities having respective, different lengths; a waveguide configured to receive light from a light source, wherein light received from the light source propagates along the waveguide; and an electro-optical modulator (EOM) configured to subject light propagating along the waveguide to multi-frequency modulation, the multi-frequency modulation generating light having at least first and second different frequencies, wherein the first optical cavity is configured to support oscillation of light having the first frequency and the second optical cavity is configured to support oscillation of light having the second frequency.
- 28. The optical device of claim 27, wherein a boundary of the first optical cavity is defined by a first layer of dielectric material and a boundary of the second optical cavity is defined by a second layer of different dielectric material, the first and second layers each having a respective different thickness.
- 29. The optical device of claim 28, wherein an extent of the second cavity resides within the first cavity.
- 30. The optical device of claim 28, wherein first and second layers are layers of a chirped mirror.
- 31. The optical device of claim 27, wherein the waveguide is provided with a plurality of alternately poled optical domains having a periodic width structure, and a duty cycle other than 50%.
- 32. The optical device according to claim 27, wherein the waveguide is formed by titanium doping of a crystal.
- 33. The optical device according to claim 27, wherein the waveguide is doped with a gain medium.
- 34. The optical device according to claim 33, wherein the gain medium comprises at least one from the group consisting of erbium and yttrium.
- 35. The optical device according to claim 27, wherein the modulation signal comprises three frequencies, two of which are multiples of a lowest the of the three frequencies.
- 36. A optical modulator sub-assembly comprising:
at least one optical cavity; an electro-optical modulator (EOM) configured to modulate light oscillating within the optical cavity, the EOM comprising:
a waveguide doped with a gain medium, the waveguide having a first end and a second end, the waveguide extending along a propagation dimension between said first and second ends; and a signal generator configured to apply a multi-frequency modulation signal to drive the EOM.
- 37. The optical modulator sub-assembly according to claim 36, wherein the multi-frequency modulation signal comprises two frequencies, one of which is a multiple of the other.
- 38. The optical modulator sub-assembly according to claim 36, wherein the multi-frequency modulation signal comprises three frequencies, two of which are multiples of a lowest the of the three frequencies.
- 39. The optical modulator sub-assembly according to claim 36, wherein the waveguide is formed by titanium doping of a crystal.
- 40. The multi-frequency light source according to claim 36, wherein the gain medium comprises at least one from the group consisting of erbium and yttrium.
- 41. The optical modulator sub-assembly of claim 33, wherein the waveguide is provided with a plurality of alternately poled optical domains having a periodic width structure, and a duty cycle other than 50%.
- 42. A multi-frequency light source comprising:
at least one light source configured to output a first light signal having a first frequency; an optical cavity configured to receive the first light signal, an electro-optical modulator (EOM) configured to modulate light oscillating within the optical cavity, the EOM comprising:
a waveguide having a first end and a second end, the waveguide extending along a propagation dimension between said first and second ends; a signal generator configured to apply a modulation signal to drive the EOM; and wherein the waveguide includes a plurality of alternately poled optical domains, each optical domain having a width defined along the light propagation dimension, the plurality of optical domains collectively having a periodic width structure.
- 43. The multi-frequency light source of claim 42, wherein the waveguide is provided with a plurality of alternately poled optical domains having a periodic width structure, and a duty cycle other than 50%.
- 44. The multi-frequency light source of claim 43, wherein the modulation signal comprises a plurality of modulation frequencies.
RELATED APPLICATIONS
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 09/962,243 filed Sep. 26, 2001, which itself claims priority to U.S. Provisional Patent Application No. 60/234,930 filed on September, 26, 2000. This application is related to application No. ______, titled METHOD AND SYSTEM FOR ACOUSTICALLY TUNING A LIGHT SOURCE, filed even date herewith, invented by Jacob B. Khurgin, Nadejda Reingand, Isaac Shpantzer, Israel Smilanski, and Pak Shing Cho.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60234930 |
Sep 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09962243 |
Sep 2001 |
US |
Child |
10173579 |
Jun 2002 |
US |