Claims
- 1. A distributed Bragg reflector comprising:
a sectioned waveguide having a high index of refraction; areas having a low index of refraction disposed between the sections of the waveguide; and wire-lens sections having a high index of refraction coupled between the sections of the waveguide.
- 2. The distributed Bragg reflector of claim 1, wherein the index of refraction of the waveguide sections is approximately equal to the index of refraction of the wire-lens sections.
- 3. The distributed Bragg reflector of claim 1 wherein the wire-lens sections have a cross section much smaller than the cross section of the waveguide sections.
- 4. The distributed Bragg reflector of claim 1 wherein the effective index of refraction of the waveguide sections is approximately 3.27 and the effective index of refraction of the areas between the waveguide sections is approximately 1.45.
- 5. The distributed Bragg reflector of claim 1 wherein the waveguide sections are either two dimensional or three dimensional.
- 6. The distributed Bragg reflector of claim 1 wherein the waveguide sections are formed from a dielectric material selected from 111-V compounds.
- 7. The distributed Bragg reflector of claim 6 wherein the waveguide sections are formed from a dielectric material selected from the group consisting of GaAs, AlAs and InP.
- 8. The distributed Bragg reflector of claim 1 wherein the areas have a low index of refraction are formed from materials selected from the group consisting of air, SiO2 and AlO2.
- 9. The distributed Bragg reflector of claim 1 wherein the areas having a low index of refraction are formed from materials selected from the group consisting of oxides of III-V compounds.
- 10. The distributed Bragg reflector of claim 1 wherein the sectioned waveguide is disposed in a substrate in a planar or vertical manner.
- 11. The distributed Bragg reflector of claim 1 and further comprising mirrors placed at each end of the sectioned waveguide.
- 12. The distributed Bragg reflector of claim 11 and further comprising multiple such reflectors arranged in an array.
- 13. The distributed Bragg reflector of claim 1 wherein sizes of the elements are modified to achieve desired spectral response.
- 14. A reflector comprising:
a plurality of waveguide segments spaced along an axis; a plurality of wire lens segments disposed co-axially between the waveguide segments; and a medium disposed between the waveguide segments having a lower index of refraction than the index of refraction of the waveguide and wire lens segments.
- 15. The reflector of claim 14 wherein the medium extends to encompass waveguide segments.
- 16. The reflector of claim 14 wherein the wire lens segments have a cross section of the same shape as the cross section of the waveguide segments.
- 17. The reflector of claim 16 wherein the cross sections are rectangular or generally circular.
- 18. The reflector of claim 14 wherein the wire lens segments have a height approximately equal to a height of the waveguide segments, but a narrower width.
- 19. The reflector claim 14 wherein the wire lens segments are disposed approximately at the geometric center of the waveguide segments.
- 20. The reflector of claim 14 wherein a reflectivity, R, is approximately equal to:
- 21. The reflector of claim 14, wherein the wire lens segments have a length varied to satisfy the condition 2(Nh,efflH+NL,efflL) is equal to a desired wavelength, λ0, where Nh,effl is the effective index of refraction of the segments, lH is the length of each waveguide segment, NL,eff is the effective index of refraction of the medium, and lL is the length of the wire lens segments.
- 22. An optical device comprising:
an optical waveguide having two ends; a pair of reflectors coupled to each end of the optical waveguide, each reflector comprising:
a plurality of waveguide segments spaced along an axis; a plurality of wire lens segments disposed co-axially between the waveguide segments; and a medium disposed between the waveguide segments having a lower index of refraction than the index of refraction of the waveguide and wire lens segments.
- 23. A distributed Bragg reflector comprising:
a waveguide having coaxial, spaced thick sections with a high index of refraction; areas having a low index of refraction disposed between the thick sections of the waveguide; thin waveguide sections having a high index of refraction coupled between the sections of the waveguide; and a layer of insulation disposed along a side of the thick and thin waveguide sections parallel to the axis.
- 24. The reflector of claim 23 and further comprising a second layer of insulation disposed along an opposite side of the thick and thin waveguide sections.
- 25. The reflector of claim 24 wherein the layers of insulation comprise SiO2.
- 26. The reflector of claim 25 wherein the areas having a low index of refraction comprise SiO2.
- 27. The reflector of claim 23 wherein the thin lens segments have a height approximately equal to a height of the waveguide segments.
REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of priority under 35 U.S.C. 119(e) to U.S. Provisional Patent Application Serial No. 60/350,294, filed Jan. 17, 2002, No. 60/375,959, filed Apr. 25, 2002, No. 60/382,686, filed May 22, 2002, and No. 60/382,676, filed May 22, 2002, all of which are incorporated herein by reference.
[0002] This application is also related to co-pending U.S. patent application (1153.073US1) entitled “High-Index Contrast Waveguide Coupler,” and filed on the same date herewith, all of which is incorporated herein by reference.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60350294 |
Jan 2002 |
US |
|
60375959 |
Apr 2002 |
US |
|
60382686 |
May 2002 |
US |
|
60382676 |
May 2002 |
US |