Claims
- 1. An optical fiber, comprising:
a core region comprising a first optical fiber material structured to form a first plurality of voids therein, said first plurality of voids occupying a first percentage of a cross-sectional area of said core region; and a cladding region surrounding said core region, said cladding region comprising a second optical fiber material structured to form a second plurality of voids therein, said second plurality of voids occupying a second percentage of a cross-sectional area of said cladding region; wherein said first and second plurality of voids have dimensions substantially smaller than the wavelength of light being used; wherein said optical fiber propagates light by an index guiding effect; and wherein said first and second optical fiber materials and said first and second percentages of cross-sectional area are selected such that an effective index of refraction of said cladding region is less than an effective index of refraction of said core region and within 0.05% thereof.
- 2. The optical fiber of claim 1, wherein said core region has a diameter of at least 20 micrometers, and wherein said optical fiber has a single mode cutoff wavelength of less than 1100nm.
- 3. The optical fiber of claim 2, wherein said first optical fiber material has an index of refraction equal to that of said second optical fiber material, and wherein an effective refractive index difference between said core and cladding regions is achieved through different selections for said first percentage and said second percentage of cross-sectional areas.
- 4. The optical fiber of claim 3, wherein said first percentage of cross-sectional area is selected to be between 10.0% and 90.0%, inclusive, and wherein said second percentage of cross-sectional area is selected to be about 0.1% greater than said first percentage.
- 5. The optical fiber of claim 4, said first plurality of voids comprising a primary void pattern dimensioned to occupy said first percentage of cross-sectional area of said core region, said second plurality of voids comprising:
a first void pattern matching said primary void pattern and occupying a percentage of a cross-sectional area of said cladding region that is the same as said first percentage; and a secondary void pattern distinct from, and non-overlaying with, said first void pattern, said secondary void pattern being dimensioned to occupy a differential percentage of a cross-sectional area of said cladding region equal to the difference between said second percentage and said first percentage.
- 6. The optical fiber of claim 4, said first plurality of voids comprising a primary void pattern dimensioned to occupy said first percentage of cross-sectional area of said core region, said second plurality of voids comprising an enlarged version of said first void pattern enlarged by an amount sufficient to occupy said second percentage of cross-sectional area of said cladding region.
- 7. The optical fiber of claim 2, wherein said second percentage of cross-sectional area is selected to be equal to said first percentage of cross-sectional area, and wherein an effective refractive index difference between said core and cladding regions is achieved through different selections for the indices of refraction of said first and second materials.
- 8. The optical fiber of claim 2, wherein said first percentage of cross-sectional area is greater than 80.0%, and wherein said index of refraction of said second material is about 0.1%-0.2% less than said index of refraction of said first material.
- 9. The optical fiber of claim 2, wherein said first material is selected to have an index of refraction at least 0.05% greater than an index of refraction of said second material, and wherein said first percentage of cross-sectional area is selected to be greater than said second percentage of cross-sectional area by an amount sufficient to cause the effective index of refraction of said core region to be greater than the effective index of refraction of said cladding region and within 0.05% thereof.
- 10. The optical fiber of claim 9, wherein said first and second percentages of cross- sectional area differ by an amount greater than or equal to 0. 1%, whereby said first and second plurality of voids may be dimensioned to within photolithographic tolerances for patterning preform slices in the manufacture of said optical fiber.
- 11. The optical fiber of claim 10, said second plurality of voids comprising a primary void pattern dimensioned to occupy said second percentage of cross-sectional area of said cladding region, said first plurality of voids comprising:
a first void pattern matching said primary void pattern and occupying a percentage of a cross-sectional area of said core region that is the same as second percentage; and a secondary void pattern distinct from, and non-overlaying with, said first void pattern, said secondary void pattern being dimensioned to occupy a differential percentage of said cross-sectional area of said cladding region equal to the difference between said first percentage and said second percentage.
- 12. The optical fiber of claim 2, wherein said first material is selected to have an index of refraction less than an index of refraction of said second material by at least 0.05%, and wherein said second percentage of cross-sectional area is selected to be greater than said first percentage of cross-sectional area by an amount sufficient to cause the effective index of refraction of said cladding region to be less than the effective index of refraction of said core region and within 0.05% thereof.
- 13. The optical fiber of claim 12, wherein said first and second percentages of cross-sectional area differ by an amount greater than or equal to 0.1%, whereby said first and second plurality of voids may be dimensioned to within photolithographic tolerances for patterning preform slices in the manufacture of said optical fiber.
- 14. The optical fiber of claim 13, said second plurality of voids comprising a primary void pattern dimensioned to occupy said second percentage of cross-sectional area of said cladding region, said first plurality of voids comprising:
a first void pattern matching said primary void pattern and occupying a percentage of a cross-sectional area of said core region that is the same as said second percentage; and a secondary void pattern distinct from, and non-overlaying with, said first void pattern, said secondary void pattern being dimensioned to occupy a differential percentage of said cross-sectional area of said cladding region equal to the difference between said first percentage and said second percentage.
- 15. An optical fiber, comprising:
a solid core region comprising a core material; and a cladding region comprising a cladding material, said cladding region surrounding said core region, said cladding region comprising a pattern of subwavelength structures forming gaps in said cladding material running parallel to an axis of the optical fiber, said pattern occupying a percentage of a cross-sectional area of said cladding region; wherein said percentage of cross-sectional area is selected such that an effective index of refraction of said cladding region is less than an index of refraction of said core region and within 0.05% thereof.
- 16. The optical fiber of claim 15, wherein said core region has a diameter of at least 20 micrometers, and wherein said optical fiber has a single mode cutoff wavelength of less than 1100 nm.
- 17. The optical fiber of claim 16, wherein said cladding material is identical to said core material, and wherein said percentage of cross-sectional area is selected to be 0.1%.
- 18. The optical fiber of claim 16, wherein said cladding material is selected to have an index of refraction greater than an index of refraction of said core material by at least 0.05%, and wherein said percentage of cross-sectional area is selected to be sufficient to cause the effective index of refraction of said cladding region to be less than the index of refraction of said core region and within 0.05% thereof.
- 19. The optical fiber of claim 16, wherein said cladding material is selected to have an index of refraction greater than an index of refraction of said core material by about 0.2%, and wherein said percentage of cross-sectional area is selected to be about 0.8%.
- 20. An optical fiber, comprising:
a core region comprising a core material, said core region comprising a pattern of subwavelength structures forming gaps in said core material running parallel to an axis of the optical fiber, said pattern occupying a percentage of a cross-sectional area of said core region; and a solid cladding region comprising a cladding material having an index of refraction less than an index of refraction of said core material and differing therefrom by more than 0.05%; wherein said percentage of cross-sectional area is selected such that an effective index of refraction of said core region is greater than an index of refraction of said cladding region and within 0.05% thereof.
- 21. The optical fiber of claim 20, wherein the index of refraction of said core material exceeds the index of refraction of said cladding material by about 0.1%, and wherein said percentage of cross-sectional area is selected to be about 0.3%.
- 22. The optical fiber of claim 20, wherein the index of refraction of said core material exceeds the index of refraction of said cladding material by about 0.2%, and wherein said percentage of cross-sectional area is selected to be about 0.6%.
- 23. The optical fiber of claim 20, wherein the index of refraction of said core material exceeds the index of refraction of said cladding material by about 1.0%, and wherein said percentage of cross-sectional area is selected to be about 3.5%.
- 24. A method of making an optical fiber, comprising the steps of:
forming a core portion using a first material; forming a cladding portion around said core portion using a second material having an index of refraction that differs from an index of refraction of said core portion by Δn percent or greater; and forming microstructural voids in said core or cladding portions sufficient to cause an effective index of refraction of said cladding portion to be less than an effective index of said core portion and to differ therefrom by 0.5Δn percent or less.
- 25. The method of claim 24, wherein said step of forming microstructural voids is performed using a photolithographic process on sliced preforms of said optical fiber to remove material therefrom, whereby any dimensional variations in the photolithographic process will occur substantially equally in the core and cladding regions, thereby allowing the resulting effective index differences to be robust against variations in the photolithographic process.
- 26. The method of claim 24, wherein Δn is 0.1%.
- 27. A method of making an optical fiber, comprising the steps of:
forming a core portion using a core material; forming a cladding portion around said core portion using a cladding material having an index of refraction equal to the index of refraction of said core portion; and forming microstructural voids in said cladding portion sufficient to cause an effective index of refraction of said cladding portion to be less than an effective index of said core portion and to differ therefrom by 0.05 percent or less.
- 28. The method of claim 27, further comprising the step of forming microstructural voids in said core portion, wherein a percentage of cross-sectional area occupied by microstructural voids in said core portion is less than a percentage of cross-sectional area occupied by microstructural voids in said cladding portion.
- 29. The method of claim 28, wherein said step of forming microstructural voids is performed using a photolithographic process on sliced preforms of said optical fiber to remove material therefrom, whereby any dimensional variations in the photolithographic process will occur substantially equally in the core and cladding regions, thereby allowing the resulting effective index differences to be robust against variations in the photolithographic process.
- 30. A microstructured optical fiber for transmitting light within a selected band of wavelengths in single-mode transmission, comprising:
a core surrounded by cladding, each of said core and cladding having a respective effective refraction index; at least one of the core and the cladding comprising subwavelength microstructures that are interspersed in a selected material and have at least one dimension that is smaller than the wavelengths in said band; wherein said effective refraction indices differ from each other by an amount controlled by controlling a least one characteristic of said microstructures.
- 31. An optical fiber as in claim 30 in which said effective refraction indices differ from each other by about 0.5% or less.
- 32. An optical fiber as in claim 31 wherein said difference in indices is maintained over a length of said fiber exceeding 100 kilometers.
- 33. An optical fiber as in claim 30 in which said microstructures occupy at least half the area of a cross-section of said fiber.
- 34. An optical fiber as in claim 30 in which each of said core and cladding comprises respective subwavelength microstructures interspersed in a respective selected material.
- 35. An optical fiber as in claim 34 in which the respective selected materials of the core and cladding have respective refraction indices that are substantially the same, and the difference in said effective refraction indices is achieved through differences between the respective microstructures in the core and cladding.
- 36. An optical fiber as in claim 34 in which said core and cladding comprise microstructures that are substantially the same and one of said core and cladding additionally comprises microstructures that are different from those in the other.
- 37. An optical fiber as in claim 34 in which the microstructures in the core differ in size from those in the cladding.
- 38. An optical fiber as in claim 30 in which said core is solid and only said cladding has said microstructures.
- 39. An optical fiber as in claim 30 in which said cladding is solid and only said core has said microstructures.
- 40. A method of making a microstructured optical fiber for transmitting light within a selected band of wavelengths in single-mode transmission, comprising:
forming a core surrounded by cladding, wherein at least one of the core and the cladding comprising subwavelength microstructures that are interspersed in a selected material and have at least one dimension that is smaller than the wavelengths in said band; said forming comprising causing the core and cladding to have respective effective refraction indices that differ from each other by an amount controlled by controlling a least one characteristic of said microstructures.
- 41. A method as in claim 40 in which the forming comprises causing the difference between said effective refraction indices to be within about 0.5%.
- 42. A method as in claim 41 including maintaining said difference in indices over a length of said fiber exceeding 100 kilometers.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of commonly assigned U.S. Pat. application Ser. No. 09/591,474, filed Jun. 9, 2000, and is related to the subject matter of commonly assigned, copending patent applications Ser. No. Ser. No. __/____ (Attorney Docket No. G013; 0980/6225 1-D), Ser. No. __/____ (Attorney Docket No. G014; 0980/64200), Ser. No. __/____ (Attorney Docket No. G016; 0980/6225 1-C), and Ser. No. __/____ (Attorney Docket No. G004; 0980/6225 1-A), each filed on the filing date of the present application. Each of the above patent applications is incorporated by reference herein.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09591474 |
Jun 2000 |
US |
Child |
09781352 |
Feb 2001 |
US |