Claims
- 1. A monolithic optical structure comprising a plurality of layers with each layer having an isolated optical pathway confined within a portion of the layer.
- 2. The monolithic optical structure of claim 1 further comprising a substrate comprising non-optical material.
- 3. The monolithic optical structure of claim 2 wherein the substrate comprises silicon.
- 4. The monolithic optical structure of claim 1 wherein the plurality of layers comprises at least three layers.
- 5. The monolithic optical structure of claim 1 wherein the plurality of layers comprises at least five layers.
- 6. The monolithic optical structure of claim 1 wherein the plurality of layers comprises at least ten layers.
- 7. The monolithic optical structure of claim 1 wherein the isolated optical pathways comprise an optical material having a different index-of-refraction from cladding material around the isolated optical pathways within the monlithic optical structure.
- 8. The monolithic optical structure of claim 7 wherein the optical material of at least one of the isolated optical pathways comprises a first doped silicon oxide.
- 9. The monolithic optical structure of claim 8 wherein the cladding material comprises a second doped silicon oxide.
- 10. The monolithic optical structure of claim 7 wherein the optical material of at least one of the isolated optical pathways comprises a crystalline optical material.
- 11. The monolithic optical structure of claim 1 wherein each layer has a thickness no more than about 250 microns.
- 12. The monolithic optical structure of claim 1 wherein each layer has a thickness from about 3 microns to about 100 microns.
- 13. The monolithic optical structure of claim 1 wherein each layer has a thickness from about 4 microns to about 20 microns.
- 14. The monolithic optical structure of claim 1 wherein at least one layer includes a plurality of isolated optical pathways.
- 15. The monolithic optical structure of claim 1 wherein at least one isolated optical pathway comprises an integrated optical circuit comprising a plurality of optical devices distinguishable from each other by the presence of optical material having different optical properties.
- 16. The monolithic optical structure of claim 15 wherein the plurality of optical devices comprises an electro-optical device.
- 17. The monolithic optical structure of claim 1 wherein at least one of the isolated optical pathways comprises an optical core of approximately uniform composition extending through a linear dimension of the structure.
- 18. The monolithic optical structure of claim 1 wherein the plurality of layers comprises at least about ten isolated optical pathways each comprising an optical core of approximately uniform composition extending through a linear dimension of the structure.
- 19. A method for forming a monolithic optical structure, the method comprising performing multiple passes of a structure through a flowing stream of product particle wherein the composition of the product particles changes between passes and wherein the product particles form multiple layers, each layer having an optical material following consolidation with a plurality of layers having an isolated pathway confined within a portion of the layer.
- 20. The method of claim 19 wherein the stream of particles has a cross section characterized by a major axis and a minor axis with the major axis being at least a factor of two larger than the minor axis.
- 21. The method of claim 20 wherein the major axis is at least a factor of five larger than the minor axis.
- 22. The method of claim 20 wherein the major axis is sufficiently large that the product stream simultaneously coats the structure along an entire linear dimension extending across the structure resulting in the deposition of an entire coating of the structure with one linear pass through the product stream.
- 23. The method of claim 19 wherein the stream of particles is formed in a reaction driven by a focused radiation beam that intersects a flowing reactant stream.
- 24. The method of claim 23 wherein the flowing reactant stream comprises an aerosol.
- 25. A flexible optical fiber having a plurality of independent light channels comprising a core optical material extending along the length of the optical fiber.
- 26. The optical fiber of claim 25 wherein the plurality of independent light channels comprises at least three independent light channels.
- 27. The optical fiber of claim 25 wherein the core optical material comprises a doped silicon oxide.
- 28. A method of forming an optical fiber comprising:
pulling a patterned/layered preform while heating the preform to a softening temperature to form an optical fiber with a plurality of independent light channels comprising core optical material.
- 29. The method of claim 28 wherein the pulling of the optical fiber is performed at a rate from about 1 meter per minute to about 100 meters per minute.
- 30. The method of claim 28 wherein the pulling of the optical fiber is performed under a tension from about 10 grams to about 40 grams.
- 31. The method of claim 28 wherein the plurality of independent light channels is at least five independent light channels.
- 32. A method for forming a structure with at least three particle coatings covering at least a portion of the substrate surface, the method comprising:
depositing at least a portion of a particle stream onto a substrate by moving the substrate through the particle stream three times within a period of no more than about one minute.
- 33. The method of claim 32 wherein at least one of the particle coatings has a different composition from the other two particle coatings and wherein the composition of the particle stream changes between movements of the substrate through the particle stream.
- 34. The method of claim 32 wherein the deposition rate is at least about 10 g/hr.
- 35. The method of claim 32 further comprising reacting a flowing reactant stream to form the stream of particles.
- 36. The method of claim 35 wherein the reactant stream has a cross section perpendicular to the propagation direction characterized by a major axis and a minor axis, the major axis being at least a factor of two greater than the minor axis.
- 37. The method of claim 35 wherein reacting the reaction is driven by a radiation beam and wherein the reactant stream is elongated in a direction along the propagation direction of the radiation beam to produce a line of particles with the relative motion of the substrate sweeping at least a portion of the line of product particles across the substrate.
- 38. The method of claim 35 wherein the reaction is driven by a light beam.
- 39. The method of claim 32 wherein the deposition of the particles comprises moving the substrate relative to the stream of product particles at a rate of at least about 0.1 centimeters per second.
- 40. The method of claim 32 wherein the deposition of the particles comprises moving the substrate relative to the stream of product particles at a rate from about 1 centimeters per second to about 30 centimeters per second.
- 41. The method of claim 32 wherein the depositing of the three particle coatings is performed in no more than about 15 seconds.
- 42. The method of claim 32 wherein the depositing of the three particle coatings is performed in no more than about 9 seconds.
- 43. The method of claim 32 wherein the at least three particle coatings comprises at least five particle coatings and the method further comprises depositing at least a portion of a particle stream onto a substrate by moving the substrate through the particle stream five times within a period of no more than about one minute.
- 44. The method of claim 32 further comprising consolidating the three particle coatings into three layers of optical material having different optical properties.
- 45. The method of claim 44 wherein the consolidating of the three particle coatings is performed following the deposition of the three layers.
- 46. The method of claim 44 wherein the consolidating of the three particle coatings is performed in at least two heating steps with at least one of the heating steps being performed prior to completing the deposition of the three particles coatings.
- 47. An optical fiber preform comprising a plurality of layers of optical material forming a plurality of isolated optical pathways extending through a linear dimension of the preform.
- 48. The optical fiber preform of claim 47 wherein a plurality of isolated optical pathways are located on different layers.
- 49. The optical fiber preform of claim 47 wherein a plurality of optical pathways are located within one layer.
- 50. The optical fiber preform of claim 47 wherein the isolated optical pathways form a two dimensional array extending through a linear dimension of the preform with a plurality of layers having a plurality of isolated optical pathways.
- 51. A computer comprising nonvolatile optical memory storing a plurality of programs that are selectively accessible.
- 52. A method of operating a computer comprising selecting a program from non-volatile optical memory and executing the program, the non-volatile optical memory comprising a plurality of programs.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of copending PCT Application designating the U.S. Ser. No. PCT/US01/45762, filed on Oct. 26, 2001, entitled “Multilayered Optical Structures,” incorporated herein by reference, which claims priority to copending U.S. Provisional Patent Application Serial No. 60/243,491, filed Oct. 26, 2000, to Bryan et al., entitled “Multilayered Optical Devices,” incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60243491 |
Oct 2000 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
PCT/US01/45762 |
Oct 2001 |
US |
Child |
10420343 |
Apr 2003 |
US |