Claims
- 1. Method for the manufacture of optical fiber comprising:
(a) preparing an optical fiber preform, (b) heating the preform to the softening temperature, and (c) drawing an optical fiber from the preform, the invention characterized in that the optical fiber has the following properties: Dispersion at 1550 nm: 5-8.5 ps/nm-km Dispersion slope at 1550 nm: <0.045 ps/n m2-km Effective area at 1550 nm: >50 μm2 Cable cutoff wavelength: <1410 nm Macrobend loss (32 mm) at 1625 nm: <5×10 3 db/km Zero dispersion wavelength: <1400 nm.
- 2. The method of claim 1 wherein the preform is produced by:
i. forming a core rod, ii. inserting the core rod into a tube, iii collapsing the tube around the core rod.
- 3. The method of claim 2 including the additional steps, after step i., of:
measuring the core diameter D1 of the rod, and adjusting the core diameter of the rod to form a rod with diameter D2.
- 4. The method of claim 3 wherein the diameter is adjusted by exposing the rod to a plasma torch.
- 5. The method of claim 4 including the additional step of applying stress to the rod while exposing the rod to a plasma torch.
- 6. The method of claim 3 wherein the diameter is adjusted by removing glass material from the outside of the rod.
- 7. The method of claim 6 wherein the glass material is removed by mechanical grinding.
- 8. The method of claim 6 wherein the glass material is removed by plasma etching.
- 9. The method of claim 1 wherein:
Dispersion at 1550 nm=7.3+/−2 ps/nm-km Effective area at 1550 nm=54-59 μm2 Dispersion slope at 1550 nm: <0.042 ps/nm2-km
- 10. The method of claim 1 wherein the optical fiber has a core radius r, and the derivative of the dispersion D of the optical fiber with respect to the core radius of the optical fiber, ∂D/∂r, is larger than a corresponding derivative D with respect to the other index profile parameters parameters.
- 11. The method of claim 10 wherein ∂D/∂r is at least 4× larger than other derivatives.
- 12. An optical fiber characterized by:
Dispersion at 1550 nm: 5-8.5 ps/nm-km Dispersion slope at 1550 nm: <0.045 ps/nm2-km Effective area at 1550 nm: >50 μm2 Cable cutoff wavelength: <1410 nm Macrobend loss (32 mm) at 1625 nm: <5×103 dB/km Zero dispersion wavelength: <1400 nm.
- 13. The optical fiber of claim 12 wherein:
Dispersion at 1550 nm=7.3+/−2 ps/nm-km
- 14. The optical fiber of claim 12 wherein:
Effective area at 1550 nm=54-58 μm
- 15. The optical fiber of claim 12 wherein:
Dispersion slope at 1550 nm: <0.042 ps/nm2-km
- 16. The optical fiber of claim 12 wherein:
Dispersion at 1550 nm=7.3+−2 ps/nm-km Effective area at 1550 nm=54-62 μm2 Dispersion slope at 1550 nm: <0.042 ps/nm2-km
- 17. The optical fiber of claim 16 wherein the refractive index profile of the optical fiber includes a central core region, a trench region, a ring region, and a cladding region.
- 18. The method of claim 12 wherein the optical fiber has a core radius r, and the derivative of the dispersion D of the optical fiber with respect to the core radius of the optical fiber, ∂D/∂r, is larger than a corresponding derivative D to the other index profile parameters.
- 19. The method of claim 18 wherein ∂D/∂r is at least 4× larger than other derivatives.
- 20. An optical WDM system using Raman amplification comprising:
a. a length of optical fiber, b. lightwave signal means for introducing a lightwave signal into the optical fiber, the lightwave signal comprising at least three wavelength division multiplexed (WDM) wavelengths, c. optical pump means for introducing lightwave pump energy into the core of the glass fiber, whereby the lightwave pump energy interacts with the lightwave signal to produce Raman amplification of the lightwave signal, the invention characterized in that the optical fiber has the following properties: Dispersion at 1550 nm: 5-8.5 ps/nm-km Dispersion slope at 1550 nm: <0.045 ps/nm2-km Effective area at 1550 nm: >50 μm2 Cable cutoff wavelength: <1410 nm Macrobend loss (32 mm) at 1625 nm: <5×103 dB/km Zero dispersion wavelength: <1400 nm.
- 21. The system of claim 20 wherein the signal means includes wavelengths above 1510 nm, and includes 1550 nm.
- 22. The system of claim 21 wherein:
Dispersion at 1550 nm=7.3+/−2 ps/nm-km
- 23. The system of claim 21 wherein:
Effective area at 1550 nm=54-62 μm
- 24. The system of claim 21 wherein:
Dispersion slope at 1550 nm: <0.042 ps/nm2-km
- 25. The system of claim 21 wherein:
Dispersion at 1550 nm=7.3+−2 ps/nm-km Effective area at 1550 nm=54-58 μm2 Dispersion slope at 1550 nm: <0.042 ps/nm2-km
- 26. The system of claim 20 wherein the system includes at least one erbium-doped fiber amplifier.
- 27. The system of claim 20 wherein the at least three wavelength division multiplexed (WDM) wavelengths operate over the S-, L- or extended L-bands.
- 28. The system of claim 20 wherein the lightwave signal means operates at 40 Gb/s.
- 29. The system of claim 20 further including means for dispersion slope compensation.
- 30. An optical WDM system comprising:
a. a length of optical fiber, b. lightwave signal means for introducing a lightwave signal into the optical fiber, the lightwave signal comprising at least three wavelength division multiplexed (WDM) wavelengths, c. means for dispersion slope compensation having a relative dispersion slope, defined as dispersion slope divided by dispersion at a given wavelength matched to the optical fiber, of:
0.0064 to 0.0082 per nm at a wavelength of approximately 1510 nm (S-band application) 0.0046 to 0.0058 per nm at a wavelength of approximately 1550 nm (C-band application) 00.42 to 00.54 per nm at a wavelength of approximately 1570 nm (C+L band compensation with combined module) 0.0038 to 0.0048 per nm at a wavelength of approximately 1590 nm (L-band application) the invention characterized in that the optical fiber has the following properties: Dispersion at 1550 nm: 5-8.5 ps/nm-km Dispersion slope at 1550 nm: <0.045 ps/nm2-km Effective area at 1550 nm: >50 μm2 Cable cutoff wavelength: <1410 nm Macrobend loss (32 mm) at 1625 nm: <5×103 dB/km Zero dispersion wavelength: <1400 nm.
- 31. The system of claim 30 wherein the C-band and L-band compensation is achieved with a single means having an RDS of 00.42 to 00.54 per nm at a wavelength of approximately 1570 nm.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 10/353,762, filed Jan. 29, 2003.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10353762 |
Jan 2003 |
US |
Child |
10397154 |
Mar 2003 |
US |