Claims
- 1. A super luminescent diode cavity comprising:
an input adapted to receive a signal from a single mode input optical fiber; an output adapted to provide an amplified signal to a single mode output optical fiber; a gain region adapted to amplify the signal received from the input optical fiber and adapted to provide the amplified signal to the output wherein the gain region is adapted to support a single optical mode; and a phase-conjugating, elongated, mirrored cavity adapted to time reverse the signal received from the input optical fiber, wherein the mirrored cavity is located between the input and the output.
- 2. The super luminescent diode cavity of claim 1, wherein the elongated, mirrored cavity is substantially parabolic in shape and adapted to perform total internal reflection on a signal received from the input optical fiber.
- 3. The super luminescent diode cavity of claim 2, wherein a reflecting surface of the elongated mirrored cavity comprises multiple facets.
- 4. The super luminescent diode cavity of claim 1, wherein the elongated, mirrored cavity is substantially elliptical in shape and adapted to perform total internal reflection on a signal received from the input optical fiber.
- 5. The super luminescent diode cavity of claim 4, wherein a reflecting surface the elongated mirrored cavity comprises multiple facets.
- 6. The super luminescent diode cavity of claim 1, wherein the input and output optic fibers are adapted to support the same optical mode that the gain region is adapted to support.
- 7. The super luminescent diode cavity of claim 1, wherein the phase conjugating region is adapted to match a waveform of a signal at the input to a waveform of a signal at the output.
- 8. The super luminescent diode cavity of claim 1, wherein the gain medium is adapted to convert a signal from a wavelength at the input fiber to a different wavelength at the output fiber.
- 9. The super luminescent diode cavity of claim 8, wherein the wavelength is an infrared wavelength at the input, and the signal is a visible wavelength at the fiber.
- 10. The super luminescent diode cavity of claim 1, wherein the gain region comprises InGaAs.
- 11. The super luminescent diode cavity of claim 1, wherein the gain region comprises InGaAsP.
- 12. A super luminescent diode cavity comprising:
a first connection for connecting to an input optical fiber wherein the input optical fiber is adapted to support a single optical mode; a second connection for connecting to an output optical fiber wherein the output optical fiber is adapted to support a single optical mode; a first gain region adapted to amplify a signal received at the first connection; a second gain region in communication with the second connection and adapted to amplify the signal; and a phase-conjugating, elongated, mirrored cavity located between the first and second gain regions and adapted to time reverse the signal between the first connection and the second connection and to match a wave front of the signal received at the first connection to a wave front at the second connection.
- 13. The super luminescent diode cavity of claim 12, wherein the first gain region is adapted to convert the signal from a wavelength at the first connection to a different wavelength at the second connection.
- 14. The super luminescent diode cavity of claim 13, wherein the wavelength at the first connection is an infrared wavelength and the different wavelength at the second connection is a visible wavelength.
- 15. The super luminescent diode cavity of claim 12, wherein the second gain region is adapted to convert the signal from a wavelength at the first connection to a different wavelength at the second connection.
- 16. The super luminescent diode cavity of claim 15, wherein the wavelength at the first connection is an infrared wavelength and the different wavelength at the second connection is a visible wavelength.
- 17. The super luminescent diode cavity of claim 12, wherein the first gain region and the second gain region are adapted to support the single optical mode.
- 18. The super luminescent diode cavity of claim 12, wherein the first gain region comprises an InGaAs layer.
- 19. The super luminescent diode cavity of claim 12, wherein the first gain region comprises an InGaAsP layer.
- 20. The super luminescent diode cavity of claim 12, wherein the second gain region comprises an InGaAs layer.
- 21. The super luminescent diode cavity of claim 12, wherein the second gain region comprises an InGaAsP layer.
- 22. The super luminescent diode cavity of claim 12, wherein the elongated mirrored cavity is adapted to time reverse the signal between the first connection an the second connection.
- 23. The super luminescent diode cavity of claim 12, wherein the elongated cavity is substantially parabolic in shape and adapted to perform total internal reflection on a signal received at the first connection.
- 24. The super luminescent diode cavity of claim 23, wherein a reflecting surface of the elongated mirrored cavity comprises multiple facets.
- 25. The super luminescent diode cavity of claim 12, wherein the elongated cavity is substantially elliptical in shape and capable of performing total internal reflection on a signal received at the first connection.
- 26. The super luminescent diode cavity of claim 25, wherein a reflecting surface of the elongated mirrored cavity comprises multiple facets.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of application Ser. No. 09/566,276, filed May 5, 2000. This application claims the benefit of priority of U.S. application Ser. No. 09/566,276, filed on May 5, 2000, and U.S. Provisional Application No. 60/132,791, filed on May 6, 1999, the contents of both of which are incorporated herein by reference in their entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60132791 |
May 1999 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09566276 |
May 2000 |
US |
Child |
10369512 |
Feb 2003 |
US |