Claims
- 1. A semiconductor waveguide optical regenerative device, photonic application-specific integrated circuit, comprising:
an optical ridge wave-guiding structure comprising at least one output, a first input for receiving an input signal, a second input for receiving a local oscillator signal, and a third input for receiving a local oscillator signal; and an optical ridge waveguide resonator structure or network of structures for utilizing carrier inversion to translate the modulation scheme from the input signal to one or more of the local oscillator signals or create a new wavelength with modulation scheme of the input signal.
- 2. A semiconductor waveguide optical regenerative device, photonic application-specific integrated circuit according to claim 1, wherein the output and inputs are comprised of ridge waveguide structures with compositional and geometrical changes to promote an active passive transition for the emission, amplification and transport of light.
- 3. A semiconductor waveguide optical regenerative device according to claim 2, possess both active and passive ridge waveguides that are monolithically integrated.
- 4. A semiconductor waveguide optical regenerative device according to claim 2, utilizes the active passive transition as a mode-squeezing device to facilitate light passage from fiber into the waveguides and into the resonator cavity of the device with minimal light loss.
- 5. A semiconductor waveguide optical regenerative device according to claim 1, further comprising two local oscillating sources fiber used as pumps or lasers for excitation or interaction with the input signal.
- 6. A semiconductor waveguide optical regenerative device according to claim 5, the local oscillating sources can be any combination of laser (fixed wavelength or tunable), laser diode, light pump.
- 7. A semiconductor waveguide optical regenerative device according to claim 6, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the second input of the optical waveguiding structure.
- 8. A semiconductor waveguide optical regenerative device according to claim 6, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the third input of the optical wave-guiding structure.
- 9. A semiconductor waveguide optical regenerative device according to claim 1, further comprising, or monolithically integrated, two local amplifiers used to increase the amplitude of the input and output signals.
- 10. A semiconductor waveguide optical regenerative device according to claim 9, the amplifier sources can be any combination of doped fiber or semiconductor optical amplifier.
- 11. A semiconductor waveguide optical regenerative device according to claim 10, further comprising a local amplifier source for producing amplifying or attenuating the input signal, the local amplifier source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 12. A semiconductor waveguide optical regenerative device according to claim 6, further comprising a local amplifier source for amplifying or attenuating the output signal, the local amplifier source being optically coupled or monolithically integrated to the third output of the optical wave-guiding structure.
- 13. A semiconductor waveguide optical regenerative device according to claim 1, further comprising two local filtering sources, or monolithically integrated, fiber used to filter the input signal and/or the output signal.
- 14. A semiconductor waveguide optical regenerative device according to claim 13, the local filtering sources can be any combination of fixed or tunable filter (fabry perot, acoustic, bragg, mach-zehnder, etc.) and may be monolithically integrated.
- 15. A semiconductor waveguide optical regenerative device according to claim 14, further comprising a local filtering source for filtering or correcting dispersion of the input signal the local oscillator signal, the local filtering source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 16. A semiconductor waveguide optical regenerative device according to claim 15, further comprising a local filtering source for filtering or correcting dispersion of the output signal, the local filtering source being optically coupled or monolithically integrated to the output of the optical wave-guiding structure.
- 17. A semiconductor waveguide optical regenerative device according to claim 16, wherein the device comprises filters, amplifiers, the ridge waveguide structure and the local oscillator sources comprises a tunable source capable of producing the local oscillator signals in a range of wavelengths, or monolithically integrated into the same common substrate.
- 18. A semiconductor waveguide optical regenerative device according to claim 17, further comprising a computer, microprocessor, application-specific integrated circuit (ASIC), or field-programmable gate array (FPGA) coupled to the ridge waveguide resonator structure, to the filters, and to the local oscillator sources, the computer, microprocessor, ASIC, or FPGA being capable of tuning and/or monitoring the waveguide structure, the filters, amplifiers and the local oscillator source, or monolithically integrated into the same common substrate.
- 19. A semiconductor waveguide optical regenerative device according to claim 18, further comprising:
a first signal monitor capable of providing to the computer (microprocessor, ASIC, or FPGA) signal power and wavelength data relating to the input signal; and a second signal monitor capable of providing to the computer (microprocessor, ASIC, or FPGA) signal power and wavelength data relating to the output signal; additional monitors associated with the local oscillating sources, amplifiers, and/or filters, or monolithically integrated into the same common substrate; wherein the computer tunes the ridge waveguide resonator structure, filters, amplifiers, and the local oscillator sources in response to the data provided by the first signal monitor and the second signal monitor.
- 20. A semiconductor waveguide optical regenerative device according to claim 1, wherein the ridgewave structure comprises a InP/InGaAsP/InGaAs epitaxial or other nonlinear semiconductor composed medium.
- 21. A semiconductor waveguide optical regenerative device according to claim 20, wherein the quasi-phasematching structure further comprises a plurality of electrodes and a voltage source coupled to the electrodes for to promote carrier inversion or cross-phase modulation within the medium.
- 22. A semiconductor waveguide optical regenerative device according to claim 21, wherein the electrodes are lithographically deposed on the structure.
- 23. A semiconductor waveguide optical regenerative device according to claim 22, wherein the electrically isolated plateau are monolithically integrated with the ridgewave guide structure and are utilized to support wire bonding and fiber alignment.
- 24. A semiconductor waveguide optical regenerative device according to claim 23, wherein the ridgewave guide structure is confined with planarizing low dielectric K material.
- 25. A semiconductor waveguide optical regenerative device comprising:
an optical ridge waveguiding structure comprising at least one output, a first input for receiving an input signal, a second input for receiving a local oscillator signal, and a third input for receiving a local oscillator signal; and an optical ridge waveguide resonator structure or network of structures for utilizing wave mixing to translate the modulation scheme from the input signal to one or more of the local oscillator signals or create a new wavelength with modulation scheme of the input signal.
- 26. A semiconductor waveguide optical regenerative device according to claim 25, wherein the output and inputs are comprised of ridge waveguide structures with compositional and geometrical changes to promote an active passive transition for the transport of light.
- 27. A semiconductor waveguide optical regenerative device according to claim 26, possess both active and passive ridge waveguides that are monolithically integrated.
- 28. A semiconductor waveguide optical regenerative device according to claim 27, utilizes the active passive transition as a mode-squeezing device to facilitate light passage from fiber into the waveguides and into the resonator cavity of the device with minimal light loss.
- 29. A semiconductor waveguide optical regenerative device according to claim 25, further comprising two local oscillating sources fiber used as pumps or lasers for excitation or interaction with the input signal.
- 30. A semiconductor waveguide optical regenerative device according to claim 29, the local oscillating sources can be any combination of laser (fixed wavelength or tunable), laser diode, light pump.
- 31. A semiconductor waveguide optical regenerative device according to claim 30, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the second input of the optical wave-guiding structure.
- 32. A semiconductor waveguide optical regenerative device according to claim 31, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the third input of the optical wave-guiding structure.
- 33. A semiconductor waveguide optical regenerative device according to claim 25, further comprising two local amplifier used to increase the amplitude of the input and output signals.
- 34. A semiconductor waveguide optical regenerative device according to claim 33, the amplifier sources can be any combination of doped fiber or semiconductor optical amplifier, or monolithically integrated into the common substrate.
- 35. A semiconductor waveguide optical regenerative device according to claim 34, further comprising a local amplifier source for producing amplifying or attenuating the input signal, the local amplifier source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 36. A semiconductor waveguide optical regenerative device according to claim 35, further comprising a local amplifier source for amplifying or attenuating the output signal, the local amplifier source being optically coupled or monolithically integrated to the third output of the optical wave-guiding structure.
- 37. A semiconductor waveguide optical regenerative device according to claim 25, further comprising two local filtering sources fiber used to filter the input signal and/or the output signal.
- 38. A semiconductor waveguide optical regenerative device according to claim 37, the local filtering sources can be any combination of fixed or tunable filter (fabry perot, acoustic, bragg, mach-zehnder, etc.)
- 39. A semiconductor waveguide optical regenerative device according to claim 38, further comprising a local filtering source for filtering or correcting dispersion of the input signal the local oscillator signal, the local filtering source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 40. A semiconductor waveguide optical regenerative device according to claim 39, further comprising a local filtering source for filtering or correcting dispersion of the output signal, the local filtering source being optically coupled or monolithically integrated to the output of the optical wave-guiding structure.
- 41. A semiconductor waveguide optical regenerative device according to claim 40, wherein the device comprises filters, amplifiers, the ridge waveguide structure and the local oscillator sources comprises a tunable source capable of producing the local oscillator signals in a range of wavelength.
- 42. A semiconductor waveguide optical regenerative device according to claim 41, further comprising a computer coupled to the ridge waveguide resonator structure, to the filters, and to the local oscillator sources, the computer being capable of tuning and/or monitoring the waveguide structure, the filters, amplifiers and the local oscillator source.
- 43. A semiconductor waveguide optical regenerative device according to claim 42, further comprising:
a first signal monitor capable of providing to the computer signal power and wavelength data relating to the input signal; and a second signal monitor capable of providing to the computer signal power and wavelength data relating to the output signal; additional monitors associated with the local oscillating sources, amplifiers, and/or filters; wherein the computer tunes the ridge waveguide resonator structure, filters, amplifiers, and the local oscillator sources in response to the data provided by the first signal monitor and the second signal monitor.
- 43. A semiconductor waveguide optical regenerative device according to claim 25, wherein the ridgewave structure comprises a InP/InGaAsP/InGaAs epitaxial or other nonlinear semiconductor composed medium.
- 44. A semiconductor waveguide optical regenerative device according to claim 43, wherein the quasi-phasematching structure further comprises a plurality of electrodes and a voltage source coupled to the electrodes for to promote carrier inversion or cross-phase modulation within the medium.
- 45. A semiconductor waveguide optical regenerative device according to claim 44, wherein the electrodes are lithographically deposed on the structure.
- 46. A semiconductor waveguide optical regenerative device according to claim 45, wherein the electrically isolated plateau are monolithically integrated with the ridgewave guide structure and are utilized to support wire bonding and fiber alignment.
- 47. A semiconductor waveguide optical regenerative device according to claim 46, wherein the ridgewave guide structure is confined with planarizing low dielectric K material.
- 48. A semiconductor waveguide optical regenerative device comprising:
an optical ridge waveguiding structure comprising at least one output, a first input for receiving an input signal, a second input for receiving a local oscillator signal, and a third input for receiving a local oscillator signal; and an optical ridge waveguide resonator structure or network of structures for utilizing cross-phase modulation to translate the modulation scheme from the input signal to one or more of the local oscillator signals or create a new wavelength with modulation scheme of the input signal.
- 49. A semiconductor waveguide optical regenerative device according to claim 48, wherein the output and inputs are comprised of ridge waveguide structures with compositional and geometrical changes to promote an active passive transition for the transport of light.
- 50. A semiconductor waveguide optical regenerative device according to claim 49, possess both active and passive ridge waveguides that are monolithically integrated.
- 51. A semiconductor waveguide optical regenerative device according to claim 50, utilizes the active passive transition as a mode-squeezing device to facilitate light passage from fiber into the waveguides and into the resonator cavity of the device with minimal light loss.
- 52. A semiconductor waveguide optical regenerative device according to claim 48, further comprising two local oscillating sources fiber used as pumps or lasers for excitation or interaction with the input signal.
- 53. A semiconductor waveguide optical regenerative device according to claim 52, the local oscillating sources can be any combination of laser (fixed wavelength or tunable), laser diode, light pump.
- 54. A semiconductor waveguide optical regenerative device according to claim 53, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the second input of the optical wave-guiding structure.
- 55. A semiconductor waveguide optical regenerative device according to claim 54, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the third input of the optical wave-guiding structure.
- 56. A semiconductor waveguide optical regenerative device according to claim 48, further comprising two local amplifier used to increase the amplitude of the input and output signals.
- 57. A semiconductor waveguide optical regenerative device according to claim 56, the amplifier sources can be any combination of doped fiber or semiconductor optical amplifier.
- 58. A semiconductor waveguide optical regenerative device according to claim 57, further comprising a local amplifier source for producing amplifying or attenuating the input signal, the local amplifier source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 59. A semiconductor waveguide optical regenerative device according to claim 58, further comprising a local amplifier source for amplifying or attenuating the output signal, the local amplifier source being optically coupled or monolithically integrated to the third output of the optical wave-guiding structure.
- 60. A semiconductor waveguide optical regenerative device according to claim 48, further comprising two local filtering sources fiber used to filter the input signal and/or the output signal.
- 61. A semiconductor waveguide optical regenerative device according to claim 60, the local filtering sources can be any combination of fixed or tunable filter (fabry perot, acoustic, bragg, mach-zehnder, etc.)
- 62. A semiconductor waveguide optical regenerative device according to claim 61, further comprising a local filtering source for filtering or correcting dispersion of the input signal the local oscillator signal, the local filtering source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 63. A semiconductor waveguide optical regenerative device according to claim 62, further comprising a local filtering source for filtering or correcting dispersion of the output signal, the local filtering source being optically coupled or monolithically integrated to the output of the optical wave-guiding structure.
- 64. A semiconductor waveguide optical regenerative device according to claim 63, wherein the device comprises filters, amplifiers, the ridge waveguide structure and the local oscillator sources comprises a tunable source capable of producing the local oscillator signals in a range of wavelength.
- 65. A semiconductor waveguide optical regenerative device according to claim 64, further comprising a computer coupled to the ridge waveguide resonator structure, to the filters, and to the local oscillator sources, the computer being capable of tuning and/or monitoring the waveguide structure, the filters, amplifiers and the local oscillator source.
- 66. A semiconductor waveguide optical regenerative device according to claim 65, further comprising:
a first signal monitor capable of providing to the computer signal power and wavelength data relating to the input signal; and a second signal monitor capable of providing to the computer signal power and wavelength data relating to the output signal; additional monitors associated with the local oscillating sources, amplifiers, and/or filters; wherein the computer tunes the ridge waveguide resonator structure, filters, amplifiers, and the local oscillator sources in response to the data provided by the first signal monitor and the second signal monitor.
- 67. A semiconductor waveguide optical regenerative device according to claim 48, wherein the ridgewave structure comprises a InP/InGaAsP/InGaAs epitaxial or other nonlinear semiconductor composed medium.
- 68. A semiconductor waveguide optical regenerative device according to claim 67, wherein the quasi-phasematching structure further comprises a plurality of electrodes and a voltage source coupled to the electrodes for to promote carrier inversion or cross-phase modulation within the medium.
- 69. A semiconductor waveguide optical regenerative device according to claim 68, wherein the electrodes are lithographically deposed on the structure.
- 70. A semiconductor waveguide optical regenerative device according to claim 69, wherein the electrically isolated plateau are monolithically integrated with the ridgewave guide structure and are utilized to support wire bonding and fiber alignment.
- 71. A semiconductor waveguide optical regenerative device according to claim 70, wherein the ridgewave guide structure is confined with planarizing low dielectric K material.
- 72. A semiconductor waveguide optical regenerative device comprising:
an optical ridge wave-guiding structure comprising at least one output, a first input for receiving an input signal, a second input for receiving a local oscillator signal, and a third input for receiving a local oscillator signal; and an optical ridge waveguide resonator structure or network of structures for utilizing carrier inversion, wave mixing and/or cross phase modulation to translate the modulation scheme from the input signal to one or more of the local oscillator signals or create a new wavelength with modulation scheme of the input signal.
- 73. A semiconductor waveguide optical regenerative device according to claim 72, wherein the output and inputs are comprised of ridge waveguide structures with compositional and geometrical changes to promote an active passive transition for the transport of light.
- 74. A semiconductor waveguide optical regenerative device according to claim 73, possess both active and passive ridge waveguides that are monolithically integrated.
- 75. A semiconductor waveguide optical regenerative device according to claim 74, utilizes the active passive transition as a mode-squeezing device to facilitate light passage from fiber into the waveguides and into the resonator cavity of the device with minimal light loss.
- 76. A semiconductor waveguide optical regenerative device according to claim 72, further comprising two local oscillating sources fiber used as pumps or lasers for excitation or interaction with the input signal.
- 77. A semiconductor waveguide optical regenerative device according to claim 76, the local oscillating sources can be any combination of laser (fixed wavelength or tunable), laser diode, light pump.
- 78. A semiconductor waveguide optical regenerative device according to claim 77, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the second input of the optical wave-guiding structure.
- 79. A semiconductor waveguide optical regenerative device according to claim 78, further comprising a local oscillator source for producing the local oscillator signal, the local oscillator source being optically coupled or monolithically integrated to the third input of the optical wave-guiding structure.
- 80. A semiconductor waveguide optical regenerative device according to claim 72, further comprising two local amplifier used to increase the amplitude of the input and output signals.
- 81. A semiconductor waveguide optical regenerative device according to claim 80, the amplifier sources can be any combination of doped fiber or semiconductor optical amplifier.
- 82. A semiconductor waveguide optical regenerative device according to claim 81, further comprising a local amplifier source for producing amplifying or attenuating the input signal, the local amplifier source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 83. A semiconductor waveguide optical regenerative device according to claim 82, further comprising a local amplifier source for amplifying or attenuating the output signal, the local amplifier source being optically coupled or monolithically integrated to the third output of the optical wave-guiding structure.
- 84. A semiconductor waveguide optical regenerative device according to claim 72, further comprising two local filtering sources fiber used to filter the input signal and/or the output signal.
- 85. A semiconductor waveguide optical regenerative device according to claim 84, the local filtering sources can be any combination of fixed or tunable filter (fabry perot, acoustic, bragg, mach-zehnder, etc.)
- 86. A semiconductor waveguide optical regenerative device according to claim 85, further comprising a local filtering source for filtering or correcting dispersion of the input signal the local oscillator signal, the local filtering source being optically coupled or monolithically integrated to the first input of the optical wave-guiding structure.
- 87. A semiconductor waveguide optical regenerative device according to claim 86, further comprising a local filtering source for filtering or correcting dispersion of the output signal, the local filtering source being optically coupled or monolithically integrated to the output of the optical wave-guiding structure.
- 88. A semiconductor waveguide optical regenerative device according to claim 87, wherein the device comprises filters, amplifiers, the ridge waveguide structure and the local oscillator sources comprises a tunable source capable of producing the local oscillator signals in a range of wavelength.
- 89. A semiconductor waveguide optical regenerative device according to claim 88, further comprising a computer coupled to the ridge waveguide resonator structure, to the filters, and to the local oscillator sources, the computer being capable of tuning and/or monitoring the waveguide structure, the filters, amplifiers and the local oscillator source.
- 90. A semiconductor waveguide optical regenerative device according to claim 89, further comprising:
a first signal monitor capable of providing to the computer signal power and wavelength data relating to the input signal; and a second signal monitor capable of providing to the computer signal power and wavelength data relating to the output signal; additional monitors associated with the local oscillating sources, amplifiers, and/or filters; wherein the computer tunes the ridge waveguide resonator structure, filters, amplifiers, and the local oscillator sources in response to the data provided by the first signal monitor and the second signal monitor.
- 91. A semiconductor waveguide optical regenerative device according to claim 72, wherein the ridgewave structure comprises a polymer medium with semiconductor dopant.
- 92. A semiconductor waveguide optical regenerative device according to claim 91, wherein the quasi-phasematching structure further comprises a plurality of electrodes and a voltage source coupled to the electrodes for to promote carrier inversion or cross-phase modulation within the medium.
- 93. A semiconductor waveguide optical regenerative device according to claim 92, wherein the electrodes are lithographically deposed on the structure.
- 94. A semiconductor waveguide optical regenerative device according to claim 93, wherein the electrically isolated plateau are monolithically integrated with the ridgewave guide structure and are utilized to support wire bonding and fiber alignment.
- 95. A semiconductor waveguide optical regenerative device according to claim 94, wherein the ridgewave guide structure is confined with planarizing low dielectric K material.
- 96. A method for converting wavelength of an optical signal in an integral device, the method comprising the following steps:
step for mixing the optical signal with a local oscillator signal having a local oscillator wavelength in a quasi-phasematching structure within the device to obtain a wavelength-shifted mixing product; and step for filtering, within the device, the wavelength-shifted mixing product.
- 97. A method according to claim 96, further comprising a step for amplifying, within the device, the wavelength-shifted mixing product before said step for filtering.
- 98. A method for converting wavelength of an optical signal in an integral device, the method comprising the following steps:
step for invoking carrier density inversion to allow wavelength translation of the modulation scheme from the input signal to a local oscillator signal with the a ridge waveguide structure within the device to obtain a wavelength translated or converted signal. step for filtering, within the device, local oscillating wavelengths and original signal.
- 99. A method according to claim 98, further comprising a step for amplifying, within the device, the wavelength-shifted or translated product before exiting the structure or filtering.
- 100. A method for converting wavelength of an optical signal in an integral device, the method comprising the following steps:
step for mixing the optical signal with a local oscillator signal having cross phase modulation occur to translate the modulation information onto the local oscillator wavelength within a ridge waveguide structure within the device; and step for filtering, within the device, local oscillating wavelengths and the original signal.
- 101. A method according to claim 100, further comprising a step for amplifying, within the device, the wavelength translated product before said step for filtering.
- 102. A semiconductor waveguide optical regenerative device comprising:
an optical waveguiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridgewave structure for mixing the input signal and the local oscillator signals to produce converted, translated or mixed output signals at the output of the optical waveguiding structure; a switch fabric optically coupled to the ridge waveguide input; and a plurality of output paths.
- 103. A semiconductor waveguide optical regenerative device comprising:
an optical waveguiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridgewave structure for mixing the input signal and the local oscillator signals to produce converted, translated or mixed output signals at the output of the optical waveguiding structure; a switch fabric optically coupled to the ridge waveguide output;
- 104. A semiconductor waveguide optical regenerative device comprising:
an optical waveguiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridgewave structure for mixing the input signal and the local oscillator signals to produce converted, translated or mixed output signals at the output of the optical waveguiding structure; a switch fabric optically coupled and monolithically integrated to the ridge waveguide input; and a plurality of output paths.
- 105. A semiconductor waveguide optical regenerative device comprising:
an optical waveguiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridgewave structure for mixing the input signal and the local oscillator signals to produce converted, translated or mixed output signals at the output of the optical waveguiding structure; a switch fabric optically coupled and monolithically integrated to the ridge waveguide output;
- 106. A semiconductor waveguide optical regenerative device comprising:
an optical waveguiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure used to route or switch signals.
- 107. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure used as an optical transponder to optically transmit and receive optical signals monolithically integrated with a signal modulator.
- 108. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure is coupled and monolithically integrated with electronic circuitry to produce hybrid optoelectronic interconnects.
- 109. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure coupled with electronic circuitry to produce monolithically integrated hybrid optoelectronic microprocessor, hybrid optoelectronic application-specific integrated circuit, hybrid optoelectronic field-programmable gate array or hybrid optoelectronic computer.
- 110. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure is coupled and monolithically integrated with electronic circuitry to produce hybrid optoelectronic components and modules which can optically receive and transmit optical signals and have the ability to groom or decompose an optical signal into electronic signals.
- 111. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure formed from molecular beam epitaxy deposition, metal oxide vapor beam epitaxy, chemical vapor deposition, lithography, etching or direct beam-direct write deposition.
- 112. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure which can be used for optical signal regeneration.
- 113. A semiconductor waveguide optical regenerative device comprising:
an optical wave-guiding structure comprising a first input for receiving an input signal including a first wavelength component at a first wavelength, at least one input for local oscillator signal, and at least one output; a ridge waveguide structure which can be used for pulse shaping.
RELATED APPLICATION
[0001] This application claims priority benefit of pending Provisional U.S. Patent Application Ser. No. 60/309,742, filed Aug. 2, 2001, entitled Semiconductor Waveguide Optical Regenerative Device, which applications are hereby incorporated by reference for all purposes.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60309742 |
Aug 2001 |
US |