IP Library Granted Patent US 7,024,078
Granted Patent B2
US 7,024,078 · App. 10/978,357 · Granted Apr 4, 2006

Fiber device with high nonlinearity, dispersion control and gain

Assignee: University of Rochester
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Quick Facts
Patent No.
US 7,024,078
App. No.
10/978,357
Granted
Apr 4, 2006
Kind
B2
Abstract

An optical fiber is tapered, for example, by heating it with a CO 2 laser. The tapering process is controlled such that the taper transition regions have taper angles selected to minimize loss. The taper waist has a diameter selected to introduce desired dispersion properties and desired nonlinearity. The optical fiber can be used as a dispersion compensator in a fiber laser or other fiber optic system. The nonlinearity in the tapered optical fiber allows the generation of ultrashort light pulses.

Claims (67)

1. A method for producing a tapered optical fiber, the method comprising:

(a) providing a non-tapered optical fiber;

(b) tapering a portion of the non-tapered optical fiber to form the tapered optical fiber to comprise a taper waist, a transition region on either side of the taper waist, and non-tapered portions on sides of the transition regions remote from the taper waist, wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber; and

(c) controlling step (b) so that in each of the transition regions, the taper angle is less than a local diffraction angle in the tapered optical fiber.

2. The method of claim 1 , wherein the taper waist has a diameter, and further comprising:

(d) selecting a wavelength of light at which the tapered optical fiber will be used;

(e) selecting a dispersion characteristic that the tapered optical fiber will have at the wavelength selected in step (d); and

(e) controlling step (b) so that the diameter of the taper waist provides the dispersion characteristic selected in step (e) at the wavelength selected in step (d).

3. The method of claim 2 , wherein the dispersion characteristic selected in step (e) is zero dispersion at the wavelength selected in step (d).

4. The method of claim 2 , wherein the dispersion characteristic selected in step (e) is a predetermined non-zero dispersion at the wavelength selected in step (d).

5. The method of claim 2 , wherein the non-tapered optical fiber provided in step (a) is a doped optical fiber.

6. The method of claim 5 , wherein the doped optical fiber is a polarization-maintaining doped optical fiber.

7. The method of claim 1 , wherein the non-tapered optical fiber provided in step (a) is a doped optical fiber.

8. The method of claim 7 , wherein the doped optical fiber is a polarization-maintaining doped optical fiber.

9. A method for producing a tapered optical fiber, the method comprising:

(a) providing a non-tapered optical fiber;

(b) tapering a portion of the non-tapered optical fiber to form the tapered optical fiber to comprise a taper waist, a transition region on either side of the taper waist, and non-tapered portions on sides of the transition regions remote from the taper waist, wherein the taper waist has a diameter;

(c) selecting a wavelength of light at which the tapered optical fiber will be used;

(d) selecting a dispersion characteristic that the tapered optical fiber will have at the wavelength selected in step (c); and

(e) controlling step (b) so that the diameter of the taper waist provides the dispersion characteristic selected in step (d) at the wavelength selected in step (c).

10. The method of claim 9 , wherein the dispersion characteristic selected in step (d) is zero dispersion at the wavelength selected in step (c).

11. The method of claim 9 , wherein the dispersion characteristic selected in step (d) is a predetermined non-zero dispersion at the wavelength selected in step (c).

12. The method of claim 9 , wherein the non-tapered optical fiber provided in step (a) is a doped optical fiber.

13. The method of claim 12 , wherein the doped optical fiber is a polarization-maintaining doped optical fiber.

14. A fiber optic system comprising:

a plurality of optical system elements which communicate with one another using light at a wavelength such that a first dispersion is introduced into the light; and

a tapered optical fiber connecting at least two of the plurality of optical system elements, the tapered optical fiber having a taper waist with a diameter selected so that the tapered optical fiber introduces a second dispersion into the light, wherein the second dispersion cancels out the first dispersion.

15. The fiber optic system of claim 14 , wherein the tapered optical fiber further comprises a transition region on either side of the taper waist, wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber, wherein the taper angle is less than a local diffraction angle in the tapered optical fiber.

16. The fiber optic system of claim 15 , wherein the tapered optical fiber is a passive optical element.

17. The fiber optic system of claim 15 , wherein the tapered optical fiber is doped and pumped to function as an active optical element.

18. The fiber optic system of claim 17 , wherein the tapered optical fiber is a polarization-maintaining doped optical fiber.

19. The fiber optic system of claim 17 , wherein the active optical element comprises an amplifier.

20. The fiber optic system of claim 17 , wherein the active optical element comprises a laser.

21. The fiber optic system of claim 15 , wherein:

the plurality of optical system elements comprise a laser for generating a series of light pulses in the tapered optical fiber; and

the diameter of the taper waist provides sufficient nonlinearity in the tapered optical fiber to achieve mode locking.

22. A tapered optical fiber comprising:

a taper waist;

a transition region on either side of the taper waist; and

non-tapered portions on sides of the transition regions remote from the taper waist;

wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber, the taper angle being less than a local diffraction angle in the tapered optical fiber.

23. The tapered optical fiber of claim 22 , wherein the tapered optical fiber is a doped optical fiber.

24. The tapered optical fiber of claim 23 , wherein the tapered optical fiber is a polarization-maintaining doped optical fiber.

25. A fiber optic laser comprising:

a plurality of optical elements defining a laser cavity;

a pumping light source for introducing pumping light into the laser cavity;

a gain fiber in the laser cavity for receiving the pumping light and for producing laser light, the gain fiber introducing a first dispersion into the laser light; and

a tapered optical fiber in the laser cavity, the tapered optical fiber comprising a taper waist with a diameter selected to introduce a second dispersion into the laser light, the second dispersion canceling out the first dispersion.

26. The fiber optic laser of claim 25 , wherein the tapered optical fiber further comprises a transition region on either side of the taper waist, wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber, wherein the taper angle is less than a local diffraction angle in the tapered optical fiber.

27. The fiber optic laser of claim 26 , wherein:

the gain fiber introduces a gain into the laser light;

the tapered optical fiber introduces a loss into the laser light; and

the loss is less than the gain, thereby providing a net gain.

28. The fiber optic laser of claim 25 , wherein the tapered optical fiber is part of the gain fiber.

29. The fiber optic laser of claim 28 , wherein the tapered optical fiber is a polarization-maintaining doped optical fiber.

30. The fiber optic laser of claim 25 , wherein the tapered optical fiber is a separate optical element from the gain fiber and is provided in series with the gain fiber.

31. The fiber optic laser of claim 30 , wherein the tapered optical fiber is connected to the gain fiber through a fusion splice.

32. A fiber optic system for generating a supercontinuum of light, the fiber optic system comprising:

a tapered optical fiber comprising a taper waist; and

a laser for introducing a series of light pulses into the tapered optical fiber;

wherein the diameter of the taper waist provides sufficient nonlinearity in the tapered optical fiber to achieve supercontinuum, wherein the tapered optical fiber further comprises a transition region on either side of the taper waist, wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber, wherein the taper angle is less than a local diffraction angle in the tapered optical fiber.

33. An optical logic element comprising:

a plurality of optical logic components; and

a tapered optical fiber interconnecting at least two of said plurality of optical logic components, wherein the tapered optical fiber comprises a taper waist and a transition region on either side of the taper waist, wherein each of the transition regions has an outer surface at a taper angle relative to a direction of propagation of light through the tapered optical fiber, wherein the taper angle is less than a local diffraction angle in the tapered optical fiber.

34. The optical logic element of claim 33 , wherein the tapered optical fiber is a doped optical fiber.

35. The optical logic element of claim 34 , wherein the doped optical fiber is a polarization-maintaining optical fiber.

36. The optical logic element of claim 34 , wherein the doped optical fiber is pumped to provide a net gain.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2005
From: KNOX, WAYNE H.
To: UNIVERSITY OF ROCHESTER
Reel/Frame 016454/0382 →
Continuity (2)
Provisional Application 6051629900 · Nov 3, 2003
Related Publication 20050094941A1 · May 5, 2005