Claims
- 1. An optical system, comprising:
an optical switch having a first region, a second region in close conjunction with the first region such that a boundary is formed at a junction between the first and second regions, an electro-optic material located within at least one of the first and second regions and that comprises at least one of a solid material, a non-poled material, a ceramic material, a polycrystalline material, a non-ferroelectric material, a cubic material, a relaxor material, a material that reduces its index of refraction with respect to a light polarization component that is aligned with an applied electric field, or combinations or blends thereof, and the optical switch further comprising an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material in the one region such that the optical switch is adjustable between first and second conditions with respect to at least one polarization component of a light signal entering the optical switch and incident upon the boundary at an angle, wherein in the first condition the first and second regions have respective indexes of refraction such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected, and in the second condition the respective indexes of refraction for the first and second regions are sufficiently different such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary.
- 2. An optical system, comprising:
an optical switch with a first region, a second region in close conjunction with the first region such that a boundary is formed at a junction between the first and second regions, a first material located in one of the first and second regions and that comprises an electro-optic material, and a second material located in the other of the first and second regions that comprises the electro-optic material in combination with another material such that the second material is less electro-optically active than the first material, the optical switch further comprising an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material in the one region such that the optical switch is adjustable between first and second conditions with respect to at least one polarization component of a light signal entering the optical switch and incident upon the boundary at an angle, wherein in the first condition the first and second regions have respective indexes of refraction such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected, and in the second condition the respective indexes of refraction for the first and second regions are sufficiently different such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary.
- 3. An optical system, comprising:
an optical switch with a first region, a second region in close conjunction with the first region such that a boundary is formed at a junction between the first and second regions, an electro-optic material located within at least one of the first and second regions, and an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material along an axis in the one region that is substantially aligned with the boundary such that the optical switch is adjustable between first and second conditions with respect to at least one polarization component of a light signal entering the optical switch and incident upon the boundary at an angle; and the first region is thicker than the second region relative to the axis, wherein in the first condition the first and second regions have respective indexes of refraction such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected, and in the second condition the respective indexes of refraction for the first and second regions are sufficiently different such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary.
- 4. An optical system, comprising:
an optical switching module comprising an electro-optic material and at least one electric field source coupled to the electro-optic material in order to apply an electric field to the electro-optic material to at least in part adjust the optical switching module between a first condition and a second condition with respect to a light signal that is incident upon the optical switching module and without regard to a polarization of the light signal, wherein in the first condition a substantial portion of the light signal entering the optical switching module exits the optical switching module along a first output path, and wherein in the second condition a substantial portion of the light signal entering the optical switching module exits the optical switching module along a second output path.
- 5. An optical system, comprising:
a substrate having at least one wall that defines at least in part a cavity; a first input waveguide associated with the substrate and optically coupled to the cavity; a first output waveguide associated with the substrate and optically coupled to the cavity; a second output waveguide associated with the substrate and optically coupled to the cavity; and an optical switch formed within the cavity with a first region, a second region in close conjunction with the first region such that a boundary is formed between the first and second regions, an electro-optic material located within at least one of the first and second regions and having a composition that is different than the substrate and also different than the waveguides, and an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material in the one region such that the optical switch is adjustable between a first condition and a second condition with respect to at least one polarization component of a light signal entering the optical switch from the first input waveguide and incident upon the boundary at an angle, wherein in the first condition the first and second regions have respective indexes of refraction such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected and into the first output waveguide, and in the second condition the respective indexes of refraction for the first and second regions are sufficiently different such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary and exits the optical switch into the second output waveguide.
- 6. A method of manufacturing an optical switching structure, comprising:
providing a substrate with a first input waveguide, a first output waveguide, and a second output waveguide; forming an cavity within the substrate such that the first input waveguide and first and second output waveguides are each respectively optically coupled to the cavity; and forming an optical switch within the cavity, wherein the optical switch is adapted to switch a light signal entering the optical switch from the first input waveguide at the first location to exit the optical switch either into the first output waveguide or into the second output waveguide.
- 7. An optical system, comprising:
a substrate; an input waveguide array comprising n input waveguides that are associated with the substrate and are adapted to carry n distinct light signals as n distinct input optical channels, respectively, wherein n is an integer; an output waveguide array comprising m output waveguides that are associated with the substrate and that are adapted to carry m distinct light signals as m distinct output optical channels, respectively, wherein m is an integer greater than n; and an optical switch assembly comprising a plurality of optical switches associated with the substrate, each optical switch being optically coupled to an input waveguide such that a light signal carried by the input waveguide enters the optical switch, and also being optically coupled to at least two output waveguides and adapted to selectively switch at least one polarization component of the light signal entering the optical switch between either of the at least two respectively coupled output waveguides, and wherein the optical switches of the optical switch assembly are arranged with respect to the input and output waveguide arrays, respectively, such that each of the n input optical channels may be selectably directed to exit the optical switch assembly along any one of exactly n+1 of the output waveguides.
- 8. The optical system of claim 7, wherein each optical switch comprises an electro-optic material and an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material in order to adjust the optical switch between first and second conditions with respect to the at least one polarization component of the light signal entering the optical switch from a first input waveguide coupled to the optical switch, wherein in the first condition a substantial portion of the at least one polarization component of the light signal entering the optical switch exits the optical switch as a first output optical channel into a first output waveguide, and in the second condition a substantial portion of the at least one polarization component entering the optical switch exits the optical switch as a second output channel into a second output waveguide.
- 9. The optical system of claim 1, wherein the electro-optic material comprises a solid material.
- 10. The optical system of claim 1, wherein the electro-optic material comprises a non-poled material.
- 11. The optical system of claim 1, wherein the electro-optic material comprises a ceramic material.
- 12. The optical system of claims 1, wherein the electro-optic material comprises a polycrystalline material.
- 13. The optical system of claim 1, wherein the electro-optic material comprises an inorganic material.
- 14. The optical system of claim 1, wherein the electro-optic material comprises a non-ferroelectric material.
- 15. The optical system of claim 1, wherein the electro-optic material comprises a cubic material.
- 16. The optical system of claim 1, wherein the electro-optic material comprises a relaxor material.
- 17. The optical system of claim 1, wherein the electro-optic material comprises a PLZT material.
- 18. The optical system of claim 1, wherein the PLZT material comprises a Lanthanum concentration that is between about 8.5% and about 9.0% by atomic percent.
- 19. The optical system of claim 4, wherein the optical switching module further comprises:
an optical switch having a first region, a second region adjacent the first region with a boundary formed at a junction between the first and second regions, the electro-optic material is located within at least one of the first and second regions, and the at least one electric field source is adapted to apply an adjustable electric field to the electro-optic material within the one region in order to adjust the optical switch between a transmission mode and a reflection mode with respect to at least one polarization component of a light signal entering the optical switch and incident upon the boundary at an angle, wherein in the transmission mode the first and second regions have respective indexes of refraction such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected, and in the reflection mode the respective indexes of refraction for the first and second regions are sufficiently different such that a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary, the first condition for the optical switching module being characterized at least in part by the optical switch in one of the transmission and reflection modes, and the second condition for the optical switching module being characterized at least in part by the optical switch in the other of the transmission and reflection modes.
- 20. The optical system of claim 8, wherein each optical switch comprises:
a first region and a second region in close conjunction with the first region such that a boundary is formed at a junction between the first and second regions, the electro-optic material is located along at least one of the first and second regions, and the electric field source is adapted to apply the adjustable electric field to the electro-optic material in the one region in order to adjust the optical switch between the first and second conditions, wherein in the first condition a substantial portion of the at least one polarization component of the light signal incident upon the boundary transmits across the boundary substantially unreflected and exits the optical switch as the first output optical channel into the respectively coupled first output waveguide, and in the second condition a substantial portion of the at least one polarization component of the light signal incident upon the boundary reflects with total internal reflection at the boundary and exits the optical switch as the second output optical channel into the second output waveguide.
- 21. The optical system of claims 1, wherein the light signal enters the optical switch as a light beam that is not guided and projects onto the boundary.
- 22. The optical system of claims 1, wherein the electro-optic material is located within the first region, and the electric field source is adapted to apply the adjustable electric field to the electro-optic material in the first region in order to adjust the optical switch between the respective first and second conditions with respect to the at least one polarization component of the light signal entering the optical switch in the respective first region.
- 23. The optical system of claim 22, wherein the electro-optic material has an index of refraction that increases with the applied electric field with respect to the one polarization component of the light signal.
- 24. The optical system of claim 23, wherein the applied electric field is substantially aligned with a polarization of the one polarization component.
- 25. The optical system of claim 23, wherein the applied electric field is aligned substantially orthogonal to a polarization of the one polarization component.
- 26. The optical system of claim 22, wherein the electro-optic material has an index of refraction that decreases with the applied electric field with respect to the one polarization component of the light signal.
- 27. The optical system of claim 26, wherein the applied electric field is substantially aligned with a polarization of the one polarization component.
- 28. The optical system of claim 26, wherein the applied electric field is aligned substantially orthogonal to a polarization of the one polarization component.
- 29. The optical system of claims 1, wherein the electro-optic material is located within the second region, and the electric field source is adapted to apply the adjustable electric field to the electro-optic material in the second region in order to adjust the optical switch between the respective first and second conditions with respect to the at least one polarization component of the light signal entering the optical switch in the respective first region.
- 30. The optical system of claim 29, wherein the electro-optic material has an index of refraction that increases with the applied electric field with respect to the one polarization component of the light signal.
- 31. The optical system of claim 30, wherein the applied electric field is substantially aligned with a polarization of the one polarization component.
- 32. The optical system of claim 30, wherein the applied electric field is aligned substantially orthogonal to a polarization of the one polarization component.
- 33. The optical system of claim 29, wherein the electro-optic material has an index of refraction that decreases with the applied electric field with respect to the one polarization component of the light signal.
- 34. The optical system of claim 33, wherein the applied electric field is substantially aligned with a polarization of the one polarization component.
- 35. The optical system of claim 33, wherein the applied electric field is aligned substantially orthogonal to a polarization of the one polarization component.
- 36. The optical system of claim 1, wherein the electric field source comprises first and second electrodes which are separated the electro-optic material along an axis in the one region such that an electro-optic response to the applied electric field is substantially localized within the electro-optic material between the electrodes in the one region.
- 37. The optical system of claim 36, wherein the substantially localized electric field within the electro-optic material along the axis between the electrodes is substantially aligned with the boundary.
- 38. The optical system of claim 36, wherein the one region is thicker than the other of the first and second regions with respect to the axis.
- 39. The optical system of claims 1, further comprising a second material in the other of the first and second regions having a different composition than the electro-optic material.
- 40. The optical system of claim 39, wherein the second material comprises the electro-optic material in combination with another material such that an electro-optic response to an applied electric field in the second material of the other region is less than an electro-optic response in the electro-optic material of the one region.
- 41. The optical system of claim 1, further comprising:
a substrate having at least one wall that defines at least in part a cavity; a first input waveguide associated with the substrate and optically coupled to the cavity; a first output waveguide associated with the substrate and optically coupled to the cavity; and a second output waveguide associated with the substrate and optically coupled to the cavity, wherein the optical switch is formed within the cavity such that the light signal enters the optical switch from the first input waveguide, in the first condition the substantial portion of the at least one polarization component of the light signal transmitting across the boundary exits the optical switch into the first output waveguide, and in the second condition the substantial portion of the at least one polarization component of the light signal reflecting with total internal reflection at the boundary exits the optical switch into the second output waveguide.
- 42. The optical system of claim 41, further comprising:
a second input waveguide associated with the substrate and optically coupled to the cavity, wherein in the first condition a substantial portion of at least one polarization component of a second light signal entering the optical switch from the second input waveguide and incident upon the boundary transmits across the boundary substantially unreflected and exits the optical switch into the second output waveguide.
- 43. The optical system of claim 42, wherein in the second condition a substantial portion of the at least one polarization component of the second light signal incident upon the boundary reflects with total internal reflection at the boundary and exits the optical switch into the first output waveguide.
- 44. The optical system of claim 4, comprising:
a substrate; a plurality of input waveguides associated with the substrate; a plurality of output waveguides associated with the substrate; and an optical switching assembly with a plurality of said optical switching modules associated with the substrate, each optical switching module being optically coupled to one of the input waveguides and at least two of the output waveguides, wherein the optical switching assembly is adapted to selectively direct an input light signal from any one of the plurality of input waveguides to one of at least two of the plurality of output waveguides at least in part by adjusting a selected one of the optical switching modules between the respective first and second conditions.
- 45. The optical system of claim 4, wherein the optical switching module further comprises:
a first pair of two adjacent regions of material with a first boundary formed at a junction between the first pair of two adjacent regions, a first volume of the electro-optic material located within at least one of the first pair of two adjacent regions, the at least one electrical field source being adapted to apply an adjustable electric field to the electro-optic material in the one region such that the first pair of two adjacent regions is adjustable between a transmission mode wherein the light signal incident upon the first boundary at an angle substantially transmits across the first boundary and a reflection mode wherein a substantial portion of a first polarization component of the light signal substantially reflects with total internal reflection at the boundary while a second polarization component of the light signal substantially transmits across the boundary; and a second pair of two adjacent regions of material with a second boundary being formed at a junction between the second pair of regions, the second boundary is optically coupled to the first boundary, a second volume of the electro-optic material is located within at least one of the second pair of regions, the at least one electrical field source being adapted to apply an adjustable electric field to the electro-optic material in the one region such that the second pair of two adjacent regions is adjustable between a transmission mode wherein a substantial portion of at least the second polarization component of the light signal transmitting across the first boundary and incident upon the second boundary also transmits across the second boundary substantially unreflected and a reflection mode wherein a substantial portion of the second polarization component of the light signal transmitting across the first boundary and incident upon the second boundary reflects with total internal reflection at the second boundary, wherein the first condition is characterized at least in part by both of the first and second pairs of adjacent regions in the transmission mode, respectively, and the second condition is characterized at least in part by both the first and second pairs of adjacent regions in the reflection mode, also respectively.
- 46. The optical system of claim 45, wherein the optical switching module further comprises:
a combiner which is adapted to combine the first polarization component reflecting at the first boundary and the second polarization component reflecting at the second boundary into an output light signal.
- 47. The optical system of claim 45, further comprising:
an optical switching array of at least n said optical switching modules, each optical switching module being adapted to receive an input light signal from a unique one of n input optical channels, wherein n is an integer; and n said combiners associated with the at least n optical switching modules, each combiner being adapted to combine the respective first and second polarization components from at least one of said optical switching modules.
- 48. The optical system of claim 47, further comprising n2 optical switching modules, wherein each combiner is associated with a unique combination of n optical switching modules and is adapted to combine the respective first and second polarization components from any one of the respective combination of n optical switching modules into an output light signal.
- 49. The optical system of claim 48, wherein each optical switching module comprises a unique pair of optical switches such that the optical switching array comprises 2n2 of said optical switches.
- 50. The optical system of claim 45, wherein
the first pair of two adjacent regions and first boundary form a first optical switch; and the second pair of two adjacent regions and second boundary form a second optical switch that is physically separated from but optically coupled to the first optical switch.
- 51. The optical system of claim 50, wherein the optical switching module further comprises a waveguide located between and optically coupling the first and second optical switches.
- 52. The optical system of claim 50, wherein
in the reflection mode for the first pair of adjacent regions of the first optical switch the first polarization component has a first polarization and the second polarization component transmitting across the first boundary has a second polarization that is aligned substantially orthogonal to the first polarization, wherein the second polarization component enters the second optical switch with the second polarization, and the second pair of adjacent regions is adjustable between the respective transmission and reflection modes with respect to the second polarization component with the second polarization.
- 53. The optical system of claim 50, wherein the optical switching module further comprises:
a first polarization rotator located between and being optically coupled to the first and second optical switches, and which is adapted to rotate the polarization alignment of the second polarization component after it transmits across the first boundary to a first rotated polarization that is substantially similarly aligned with the first polarization, wherein the second polarization component enters the second optical switch with the first rotated polarization, and the second pair of adjacent regions is adjustable between the respective transmission and reflection modes with respect to the second polarization component having the first rotated polarization.
- 54. The optical system of claim 53, wherein the optical switching module further comprises:
a second polarization rotator that is adapted to receive the second component reflecting from the second boundary in the respective reflection mode for the second boundary and to rotate the polarization alignment from the first rotated polarization to a second rotated polarization that is substantially similarly aligned with the second polarization.
- 55. The optical system of claim 53, wherein the polarization rotator comprises an electro-optic material and also an electric field source which is adapted to apply an adjustable electric field to the electro-optic material.
- 56. The optical system of claim 53, further comprising a substrate with at least one wall that defines at least in part a substantially continuous cavity, wherein the first polarization rotator and at least one of the first and second optical switches are located within the cavity.
- 57. The optical system of claim 56, wherein the polarization rotator and both of the first and second optical switches are located within the cavity.
- 58. The optical system of claim 57, wherein the first optical switch, the polarization rotator, and the second optical switch are formed at least in part from a substantially integral electro-optic material.
- 59. The optical system of claim 53, wherein the first optical switch is optically coupled to the polarization rotator substantially via a first waveguide, and the polarization rotator is optically coupled to the second optical switch substantially via a second waveguide.
- 60. The optical system of claim 45, wherein the optical switching module further comprises:
an optical switch with a first region having a first optical refraction index, a second region having a second optical refraction index and that is in close conjunction with the first region, and a third region having a third optical refraction index and that is in close conjunction with the second region opposite the first region, the first and second regions forming the first pair of regions and the second and third regions forming the second pair of regions such that the first boundary is located at a junction between the first and second regions and the second boundary is located at a junction between the second and third regions, and wherein the optical switch is adjustable between the first and second conditions by adjusting either (i) the second optical refractive index relative to both the first and third optical refractive indexes, or (ii) the first and third optical refractive indexes relative to the second optical refractive index.
- 62. The optical system of claim 60, wherein each of the first and third regions comprises an electro-optic material, and the at least one electric field source is adapted at least in part to apply first and second adjustable electric fields, respectively, to the electro-optic material along the first and third regions, also respectively.
- 63. The optical system of claim 62, wherein the electro-optic material is further located within the second region, the first and second electric fields are substantially aligned along an axis, and the first and third regions are thicker than the second region relative to the axis.
- 64. The optical system of claim 62, wherein the first and second electric fields are substantially aligned with each other.
- 65. The optical system of claim 62, wherein the first and second electric fields are substantially aligned with the first and second boundaries, respectively.
- 66. The optical system of claim 60, wherein the second region comprises an electro-optic material, and the at least one electric field source is adapted to apply an adjustable electric field to the electro-optic material along the second region.
- 67. The optical system of claim 66, wherein the electric field is substantially aligned with the first and second boundaries.
- 68. The optical system of claim 65, wherein the electro-optic material is further located within the first and third regions, the electric field is substantially aligned with the first and second boundaries along an axis, and the second region is thicker than both of the first and third regions relative to the axis.
- 69. The optical system of claim 5, further comprising:
a second input waveguide associated with the substrate and optically coupled to the cavity; wherein in the first condition a substantial portion of at least one polarization component of a second light signal entering the optical switch from the second input waveguide and incident upon the boundary transmits across the boundary substantially unreflected and exits the optical switch into the second output waveguide.
- 70. The optical system of claim 69, wherein in the second condition a substantial portion of the at least one polarization component of the second light signal incident upon the boundary reflects with total internal reflection at the boundary and exits the optical switch into the first output waveguide.
- 71. The optical system of claim 5, further comprising
a wavelength de-multiplexer which is adapted to receive a WDM optical signal, and to separate the WDM optical signal into n wavelength channels carrying n distinct light signals, respectively, with n unique wavelength bands, also respectively, wherein n is an integer; n optical switching modules associated with the substrate, each having at least one said optical switch coupled to one said first input waveguides and one each of said first and second output waveguides, each optical switch being adapted to receive at least one polarization component of one of the wavelength channels along the respectively coupled first input waveguide and also being adapted to selectively switch the one wavelength channel between either one of the respectively coupled first and second output waveguides.
- 72. The optical system of claim 71, wherein the wavelength de-multiplexer is integrated with the substrate.
- 73. The optical system of claim 71, wherein the wavelength de-multiplexer is physically separate from the substrate but each wavelength channel is optically coupled to the input waveguides associated with the substrate through either free-space or a plurality of coupling waveguides.
- 74. The optical system of claim 71, further comprising:
n retain waveguides associated with the substrate; and n drop waveguides associated with the substrate, wherein the n optical switching modules are arranged to allow at least one polarization component of each of the n wavelength channels to be selectively retained to one of the n retain waveguides or dropped to one of the n drop waveguides, such that m drop waveguides may carry m wavelength channels, respectively, with n−m retain waveguides carrying n−m wavelength channels, also respectively, and with m retain waveguides left open without a retained wavelength channel, wherein m is in integer between zero and n.
- 75. The optical system of claim 74, further wherein each retain waveguide and each drop waveguide is unitary with at least one output waveguide, respectively.
- 76. The optical system of claim 74, further comprising:
a wavelength multiplexer coupled to each of the n retain waveguides and which is adapted to combine the n−m wavelength channels from the respective retain waveguide segments into a retained wavelength multiplexed signal.
- 77. The optical system of claim 76, wherein the wavelength multiplexer is integrated with the substrate.
- 78. The optical system of claim 76, wherein the wavelength multiplexer is physically separate from the substrate but is optically coupled to each of the n retain waveguides through either free-space or a plurality of coupling waveguides.
- 79. The optical system of claim 74, wherein the optical switch assembly further comprises a plurality of add waveguides associated with the substrate and that are adapted to receive and carry a plurality of added wavelength channels, respectively, wherein each of the add waveguides is optically coupled to one of the n retain waveguides, and the optical switching modules are arranged with respect to the add and retain waveguides in order to selectively allow up to m of the added wavelength channels to up to m of the retained waveguides that are selectively left open by a dropped wavelength channel.
- 80. The optical system of claim 7, wherein m is equal to 2n.
- 81. The optical system of claim 80, wherein each of the of the n input optical channels may not be selectively switched to n−1 of the output optical channels.
- 82. The optical system of claim 20, wherein
each optical switch is also optically coupled to a second input waveguide; and in the first condition a substantial portion of at least one polarization component of a second input optical channel entering the optical switch from the second input waveguide as a second light signal and incident upon the boundary transmits across the boundary substantially unreflected and exits the optical switch into the second output waveguide.
- 83. The optical system of claim 82, wherein in the second condition a substantial portion of the at least one polarization component of the second input optical channel incident upon the boundary reflects with total internal reflection at the boundary and exits the optical switch into the first output waveguide.
- 84. The optical system of claim 53, further comprising at least one waveguide coupled to at least one of the first and second optical switches.
- 85. The optical system of claim 5, wherein the substrate comprises at least one of silica and silicon.
- 86. The optical system of claim 5, wherein the substrate comprises a substantially planar structure.
- 87. The method of claim 6, further comprising:
forming the optical switch within the cavity at least in part by placing a material within the cavity that has an index of refraction that changes in the presence of an applied energy field.
- 88. The method of claim 87, wherein the optical switch is formed within the cavity at least in part by:
placing a precursor material within the cavity; and heat treating the precursor material to form the material.
- 89. The method of claim 88, further comprising:
providing the precursor material as a sol-gel substance.
- 90. The method of claim 6, wherein the optical switch is formed within the cavity at least in part by placing an electro-optic material within the cavity.
- 91. The method of claim 90, further comprising positioning at least one electrode in close association with the electro-optic material such that an electric field may be applied to the electro-optic material within the cavity when a voltage is applied between the electrode and another electrode.
- 92. The method of claim 91, further comprising providing the electrode along at least one wall of the substrate that defines at least in part the cavity.
- 93. The method of claim 86, further comprising forming a step in the electro-optic material within the cavity such that one region of the electro-optic material has a first thickness relative to an axis within the cavity and another adjacent region of the electro-optic material has a second thickness within the cavity relative to the axis that is less than the first thickness.
- 94. The method of claim 90, further comprising:
placing a second material within the cavity having a different composition than the electro-optic material such that the electro-optic material forms a first region and the second material forms a second region within the cavity that is in close conjunction with the first region such that a boundary is formed at the junction between the first and second regions.
- 95. The method of claim 94, further comprising forming the second material by combining a volume of the electro-optic material with another material such that the second material is less electro-optically active than the electro-optic material alone.
- 96. The method of claim 95, further comprising providing the electro-optic material as a PLZT material, and forming the second material by combining the volume of PLZT material with the other material.
- 97. The method of claim 96, wherein the other material is a silica based material.
- 98. The method of claim 87, further comprising placing the material within the cavity at least in part by introducing a precursor material by vapor deposition.
- 99. The method of claim 87, further comprising placing the material within the cavity at least in part by introducing a precursor material by plasma deposition.
- 100. The method of claim 83, further comprising placing the material within the cavity at least in part by epitaxially growing the material within the cavity.
- 101. An optical system, comprising:
an optical switch having at least one bottom face, n side walls, and at least one top face opposite the at least one bottom face with respect to the n side walls, the optical switch being adapted to receive at least one input light signal incident upon the optical switch along a first optical path and being adjustable between a first condition and a second condition, wherein in the first condition the input light signal is allowed to exit the optical switch along a second optical path exiting the optical switch, and in the second condition at least one polarization component of the input light signal is directed by the optical switch to exit the optical switch along a third optical path; and a waveguide array comprising not more than n−2 waveguides optically interfaced with the optical switch along not more than n−2 of the side walls, wherein the waveguide array further comprises a first waveguide optically coupled to the first optical path, a second waveguide optically coupled to the second optical path, and a third waveguide optically coupled to the third optical path, and further wherein n is an integer.
- 102. The optical system of claim 101, further comprising 6 side walls such that the optical switch has a hexagonal shape.
- 103. The optical system of claim 101, further comprising 8 side walls such that the optical switch has a substantially octagonal shape.
- 104. The optical system of claim 101, wherein the optical switch comprises an electro-optic material.
- 105. The optical system of claim 101, wherein the optical switch comprises a PLZT material.
- 106. The optical system of claim 105, wherein the PLZT material has a lanthanum concentration of between about 8.5% and about 9.0% by atomic percent.
- 107. An optical system, comprising:
a substrate having at least one surface that forms n side walls that define at least in part a cavity, wherein the cavity is further defined by first and second boundary regions located opposite each other with respect to the n side walls, wherein n is an integer; and a plurality of waveguides formed within the substrate, wherein not more than n−2 of the waveguides are interfaced with the cavity along not more than n−2 of the side walls.
- 108. The optical system of claim 107, wherein n equals 6 side walls such that the cavity has a hexagonal shape.
- 109. The optical system of claim 107, further wherein n equals 8 side walls such that the cavity has a substantially octagonal shape.
- 110. The optical system of claim 107, further comprising:
an optical switch located within the cavity and which is adjustable between first and second conditions, wherein in the first condition at least one polarization component of an input light signal from a first waveguide and incident upon the optical switch is allowed to transmit across the optical switch substantially unreflected and exits the optical switch along a second waveguide, and in the second condition the optical switch is adapted to substantially reflect the at least one polarization component of the input light signal to exit the optical switch along a third waveguide.
- 111. The optical system of claim 110, wherein the optical switch comprises an electro-optic material and also an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material.
- 112. The optical system of claim 111, wherein the optical switch comprises a PLZT material.
- 113. The optical system of claim 112, wherein the PLZT material has a lanthanum concentration of between about 8.5% and about 9.0% by atomic percent.
- 114. An optical system, comprising:
a substrate having a surface that defines at least in part a cavity; an electro-optic material located within the cavity; and an electric field source which is adapted at least in part to apply an electrical field to the electro-optic material within the cavity; and a coating located at least in part between electro-optic material and the surface and comprising a mixture of a second material that is different than the electro-optic material and a third material that is different than the electro-optic material and also the second material.
- 115. An optical system, comprising:
a substrate comprising at least one of silica and silicon, and having a surface that defines at least in part a cavity; an electro-optic material formed within the cavity by heat processing an electro-optic precursor material within the cavity at sufficient temperature to generally cause silica migration from the substrate; and a coating located at least in part between the electro-optic material and the surface, wherein the electro-optic material is substantially free from silica contamination.
- 116. An optical system, comprising:
a substrate having a surface that defines at least in part a cavity; first and second waveguide segments formed within the substrate and that are optically coupled to and are separated by an optical path through the cavity; and a plurality of optical components each being located at least in part within the cavity and along the optical path between the first and second waveguide segments, wherein each of the optical components is adapted to influence at least one aspect of an input light signal from the first waveguide segment incident upon the cavity such that an exit light signal which is different from the input light signal exits the cavity into the second waveguide segment.
- 117. An optical system, comprising:
a plurality of optical components, each optical component comprising a portion of a substantially continuous material and that defines an optical path and is responsive to an applied energy field in order to influence at least one aspect of a light signal propagating through the material when the energy field is applied to the material, each optical component being aligned with respect to the other optical components such that the respective optical paths are connectable in selected configurations to route at least one aspect of a light signal through the optical system.
- 118. A method for forming an optical system, comprising:
providing a substrate comprising at least one of silica and silicon; forming a cavity within the substrate; filling the cavity at least in part with an electro-optic material; heating the electro-optic material within the cavity to at least 600 degrees C; and substantially preventing migration of silica into the electro-optic material while the electro-optic material is being heated.
- 119. A method for making an optical system, comprising:
providing a substrate comprising at least one of silica and silicon; forming a cavity within the substrate such a surface of the substrate forms a cavity wall that defines at least in part the cavity; coating the cavity wall with a mixture of a first material and a second material; and filling the cavity at least in part with an electro-optic material having a different composition than the first material, the second material, or the mixture.
- 120. A method for making an optical system, comprising:
providing a substrate comprising at least one of silica and silicon; forming a cavity within the substrate such a surface of the substrate forms a cavity wall that defines at least in part the cavity; and applying a coating to the cavity wall that comprises a mixture of a first material that is substantially electrically conductive and a second material that substantially neutralizes the electrical conductivity of the mixture, wherein the cavity may be filled at least in part with a third material such that the coating is between the third material and the cavity wall.
- 121. A method for making an optical system, comprising:
providing a substrate; forming a cavity within the substrate such a surface of the substrate forms a cavity wall that defines at least in part the cavity; applying a coating to the cavity wall that comprises a first material selected from the group consisting of MgO, Al2O3, ZrO2, TiO2, ITO, and combinations and blends thereof; and filling the cavity at least in part with an electro-optic material having a different composition than coating or the first material.
- 122. The optical system of claim 114, wherein
the coating comprises a mixture of a second material that has a different composition than the electro-optic material and a third material that has a different composition than either the second material or the electro-optic material.
- 123. The optical system of claim 114, wherein
the second material comprises a relatively electrically conductive material; and the third material comprises an electrical conductivity neutralizing agent, wherein the coating does not substantially inhibit an application of an electric field to the electro-optic material within the cavity.
- 124. The optical system of claim 114, wherein the coating comprises a material that is selected from the group consisting of MgO, Al2O3, ZrO2, TiO2, ITO (Indium Tin Oxide), or combinations and blends thereof.
- 125. The optical system of claim 114, wherein the coating comprises a mixture of ITO and Al2O3.
- 126. The optical system of claim 114, wherein the electro-optic material forms at least in part an optical switch within the cavity, and further comprising an electric field source which is adapted to apply an adjustable electric field to the electro-optic material in order to affect a direction of a light signal propagating through the cavity.
- 127. The optical system of claim 126, wherein
the optical switch further comprises a first region, a second region adjacent the first region such that a boundary is formed between the first and second regions, the electro-optic material is located at least within one of the first and second regions and has an optical index of refraction that changes in the presence of an applied electric field with respect to the at least one polarization component of the input light signal entering the first region; and the electric field source is adapted at least in part to apply an adjustable electric field to the electro-optic material within one of the first and second regions in order to adjust the optical switch between first and second conditions, wherein in the first condition the optical refractive index of the first and second regions are substantially matched such that the at least one polarization component is allowed to transmit across the boundary substantially unreflected, and in the second condition the respective optical refractive indexes of the first and second regions are sufficiently different such that the at least one polarization component reflects with total internal reflection at the boundary.
- 128. The optical system of claim 116, wherein at least one of the optical components comprises:
a material that is adjustable in order to influence at least one aspect of a light signal propagating through the material when an energy field is applied to the material; and an energy field source that is adapted to apply an adjustable energy field to the material.
- 129. The optical system of claim 116, wherein the plurality of optical components comprises an optical switch which is adjustable between first and second conditions, wherein in the first condition at least one polarization component of an input light signal incident upon the optical switch along a first optical path is allowed to transmit across the optical switch substantially unreflected and exits the optical switch along a second optical path, and in the second condition the optical switch is adapted to substantially reflect the at least one polarization component of the input light signal such that the at least one polarization component does not exit the optical switch along the second optical path.
- 130. The optical system of claim 129, wherein
the optical switch further comprises a first region, a second region adjacent the first region such that a boundary is formed between the first and second regions, an electro-optic material located at least within one of the first and second regions and which has an optical index of refraction that changes in the presence of an applied electric field with respect to the at least one polarization component of the input light signal entering the first region; and the optical system further comprises an electric field source which is adapted at least in part to apply an adjustable electric field to the electro-optic material within one of the first and second regions in order to adjust the optical switch between the first and second conditions, wherein in the first condition the optical refractive index of the first and second regions are substantially matched such that the at least one polarization component is allowed to transmit across the boundary substantially unreflected, and in the second condition the respective optical refractive indexes of the first and second regions are sufficiently different such that the at least one polarization component reflects with total internal reflection at the boundary.
- 131. The optical system of claim 129, wherein the plurality of optical components comprises two of said optical switches.
- 132. The optical system of claim 131, wherein the plurality of optical components further comprises a polarization rotator located between the two optical switches along the optical path.
- 133. The optical system of claim 129, wherein the plurality of optical components further comprises a polarization rotator located on a first side of the optical switch relative to the optical path.
- 134. The optical system of claim 133, wherein the plurality of optical components further comprises a second polarization rotator located on a second side of the optical switch opposite the first side of the polarization rotator relative to the optical path.
- 135. The optical system of claim 117, wherein the material comprises an electro-optic material, and the energy field source comprises an electrical field source that is adapted to apply an adjustable electric field to the electro-optic material.
- 136. The optical system of claim 116, further comprising a collimator that is adapted to substantially collimate an input light signal incident upon at least one of the plurality of optical components.
- 137. The method of claim 118, further comprising:
applying a coating to a surface of the substrate that forms a wall that defines at least in part the cavity, such that the coating substantially prevents migration of silica into the electro-optic material during heating.
- 138. The method of claim 120, further comprising filling the cavity at least in part with an electro-optic material that is different than the first material, the second material, and the mixture.
- 139. The method of claim 119, further comprising
applying the coating by forming a liquid mixture of a relatively electrically conductive material with an electrical conduction neutralizing agent, applying the liquid mixture to the surface, and curing the liquid mixture to a substantially solid mixture form that is substantially secured to the surface.
- 140. The method of claim 139, further comprising:
forming the liquid mixture in an alcohol based solution.
- 141. The method of claim 139, further comprising:
forming the liquid mixture by mixing ITO in an alcohol based solution with Al(NO3)3 also in an alcohol solution, wherein the Al(NO3)3 may be in a hydrated form.
- 142. The method of claim 118, further comprising:
providing an electro-optic precursor material in a non-solid form; and filling the cavity at least in part with the electro-optic precursor material in the non-solid form.
- 143. The method of claim 142, further comprising:
treating the electro-optic precursor material to form the electro-optic material in a substantially solid form within the cavity.
- 144. The method of claim 118, wherein the electro-optic material comprises PLZT.
- 145. The method of claim 144, further comprising providing the PLZT with a lanthanum concentration of between about 8.5% and 9.0% on a molecular basis.
- 146. The method of claim 118, further comprising forming an optical switch within the cavity without poling the electro-optic material.
- 147. The method of claim 118, further comprising forming the coating to include a mixture of ITO and Al2O3.
- 148. The method of claim 119, further comprising:
providing the substrate with at least one waveguide formed therein; forming the cavity such that the waveguide is optically coupled to the cavity along the cavity wall.
Parent Case Info
[0001] This application is a continuation-in-part of Ser. No. 09/434,085, filed Nov. 5, 1999, which is a continuation-in-part of Ser. No. 08/959,778, filed Oct. 29, 1997, now U.S. Pat. No. 6,310,712. This application also claims the benefit under 35 U.S.C. §119(e) of U.S. Provisional Application 60/245,810, filed Nov. 3, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60245810 |
Nov 2000 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09434085 |
Nov 1999 |
US |
Child |
10013336 |
Nov 2001 |
US |
Parent |
08959778 |
Oct 1997 |
US |
Child |
09434085 |
Nov 1999 |
US |