Claims
- 1. A photonic band-gap crystal optical waveguide comprising:
a photonic band-gap crystal having a pitch and; a defect, including a core, said defect having a boundary that encloses a plane cross section and a length dimension perpendicular to the plane cross section, the defect boundary including a plurality of protrusions.
- 2. The photonic band-gap crystal optical waveguide of claim 1, wherein said defect has a structure such that the mode power fraction confined to said core is not less than 0.6.
- 3. The photonic band-gap crystal optical waveguide of claim 1, wherein said boundary is selected such that the mode power fraction confined to said core is not less than 0.6.
- 4. The photonic band-gap crystal optical waveguide of claim 1, wherein:
said boundary is being characterized by a numerical value and the numerical value is selected so that the wavelength of the localized mode produced by the defect propagates in the wavelength range of the photonic band-gap; and the ratio of the numerical value of said defect to the pitch is selected to avoid the excitation of surface modes within the photonic band-gap.
- 5. The photonic band-gap crystal optical waveguide of claim 1, wherein:
said boundary is being characterized by a perpendicular distance from defect center to the nearest point on the boundary, said distance being such that: (i) that the wavelength of the localized mode produced by the defect propagates in the wavelength range of the photonic band-gap; and the ratio of the distance to the pitch is selected to avoid the excitation of surface modes within the photonic band-gap.
- 6. The photonic band-gap crystal optical waveguide of claim 5, wherein said distance is selected so that the mode power fraction confined to the core is not less than 0.6.
- 7. The photonic band-gap crystal optical waveguide of claim 1, wherein said band-gap crystal optical waveguide is an optical fiber, said plurality of protrusions being a plurality of ribs situated along the core surface; and said boundary is being characterized a numerical value, said numerical value being the distance from core center to the nearest point on one of said ribs.
- 8. The photonic band-gap crystal optical waveguide of claim 7, wherein, said core has refractive index lower than the refractive index of material immediately surrounding said core.
- 9. The photonic band-gap crystal optical waveguide of claim 1 wherein,
said defect has a circular cross section plane with said plurality of ribs protruding from the defect boundary, said boundary is being characterized a numerical value and the numerical value is the radius of the circular cross section measured to the ribs.
- 10. The photonic band-gap crystal optical waveguide according to any of the preceding claims, wherein the number of said protrusions is 6×N, where N is a positive integer.
- 11. The photonic band-gap crystal optical waveguide of claim 1, wherein said waveguide is single mode waveguide, said defect having a circular cross section with the protruding ribs, said defect boundary is being characterized a the distance from the center of said cross-section to the nearest point on said boundary, and, for a mode power fraction confined to core of not less than 0.6, the ratio of said distance to pitch has a range from about 0.6 to 2.5.
- 12. The photonic band-gap crystal optical waveguide of claim 11, wherein the mode power fraction confined to said core is not less than 0.75.
- 12. The photonic band-gap crystal optical waveguide of claim 1 wherein,
said defect is a core having a hexagonal cross section plane, the mode power fraction confined to said core is not less than 0.6 and the defect boundary being characterized by a numerical value, wherein the numerical value is the length of a line drawn from the center of the hexagonal crossection perpendicular to a side of the hexagon, and, the ratio of the numerical value to pitch has a range from 0.6 to 2.5.
- 13. The photonic band-gap crystal optical waveguide of claim 12, wherein the mode power fraction confined to said core is not less than 0.75.
- 14. The photonic crystal optical band-gap waveguide comprising:
photonic band-gap crystal having a pitch; and a defect, including a core, said defect having a boundary that encloses a plane cross section and a length dimension perpendicular to the plane cross section, the defect boundary (i) including a plurality of protrusions and (ii) being characterized by at least one numerical value, wherein said numerical value is measured from defect center to the closest point on said boundary.
- 15. The photonic band-gap crystal optical waveguide of claim 14, wherein
the mode power fraction confined to said core is not less than 0.6.
- 16. The photonic band-gap crystal optical waveguide to claim 14, wherein
the number of said protrusions is 6×N, where N is a positive integer.
Parent Case Info
[0001] This is a continuation of U.S. patent application Ser. No. 10/067,644 filed on Feb. 4, 2002, the content of which is relied upon and incorporated herein by reference in its entirety, and the benefit of priority under 35 U.S.C. § 120 is hereby claimed as well as the benefit and priority to U.S. Provisional Patent Application No. 60/277,312, filed Mar. 20, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60277312 |
Mar 2001 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
10067644 |
Feb 2002 |
US |
Child |
10713241 |
Nov 2003 |
US |