Wavelength-locking a ring-resonator modulator

US9983420B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9983420-B2
Application numberUS-201414516301-A
CountryUS
Kind codeB2
Filing dateOct 16, 2014
Priority dateDec 9, 2013
Publication dateMay 29, 2018
Grant dateMay 29, 2018

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

In the optical device, a ring-resonator modulator, having an adjustable resonance (center) wavelength, optically couples an optical signal that includes the carrier wavelength from an input optical waveguide to an output optical waveguide. A monitoring mechanism in the optical device, which is optically coupled to the output optical waveguide, monitors a performance metric of an output optical signal from the output waveguide. For example, the monitoring mechanism may monitor: an average optical power associated with the output optical signal, and/or an amplitude of the output optical signal. Moreover, control logic in the optical device adjusts the resonance wavelength based on the monitored performance metric so that the performance metric is optimized.

First claim

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What is claimed is: 1. An optical device, comprising: an input optical waveguide configured to convey an input optical signal having a carrier wavelength; a ring-resonator modulator, having an adjustable resonance wavelength, optically coupled to the input optical waveguide, wherein the ring-resonator modulator is defined in an optical waveguide; an output optical waveguide, optically coupled to the ring-resonator modulator, configured to convey an output optical signal, having the resonance wavelength, from the ring-resonator modulator; a monitoring mechanism, optically coupled to the output optical waveguide, configured to monitor a performance metric associated with the output optical signal, wherein the performance metric includes an average optical power associated with the output optical signal, and wherein the performance metric is determined at the adjustable resonance wavelength; and control logic configured to adjust the resonance wavelength based on the performance metric, without monitoring the input optical signal and without monitoring an input optical-signal power, so that the performance metric is optimized, wherein the monitoring mechanism monitors the performance metric and the control logic adjusts the resonance wavelength during a calibration mode; wherein the adjustable resonance wavelength is locked at a fixed position relative to the carrier wavelength of input optical signal. 2. The optical device of claim 1 , wherein the control logic adjusts the resonance wavelength by adjusting a temperature of the ring-resonator modulator. 3. The optical device of claim 2 , wherein the optical device further comprises a heater thermally coupled to the ring-resonator modulator. 4. The optical device of claim 1 , wherein the control logic adjusts the resonance wavelength using one of: carrier injection, carrier depletion and carrier accumulation. 5. The optical device of claim 1 , wherein the resonance wavelength is adjusted after a time interval. 6. The optical device of claim 1 , wherein the monitoring mechanism monitors the performance metric and the control logic adjusts the resonance wavelength during normal operation of the optical device. 7. The optical device of claim 6 , wherein the resonance wavelength is adjusted continuously. 8. The optical device of claim 1 , wherein the control logic includes a delta-sigma modulator. 9. The optical device of claim 1 , wherein the adjustable resonance wavelength is locked at a fixed position that maximizes one of an amplitude of output optical signal, and an average optical power of output optical signal. 10. The optical device of claim 1 , wherein the adjustable resonance wavelength is locked at a fixed position that minimizes loss through the ring-resonator modulator. 11. A system, comprising an optical device, wherein the optical device includes: an input optical waveguide configured to convey an input optical signal having a carrier wavelength; a ring-resonator modulator, having an adjustable resonance wavelength, optically coupled to the input optical waveguide, wherein the ring-resonator modulator is defined in an optical waveguide; an output optical waveguide, optically coupled to the ring-resonator modulator, configured to convey an output optical signal, having the resonance wavelength, from the ring-resonator modulator; a monitoring mechanism, optically coupled to the output optical waveguide, configured to monitor a performance metric associated with the output optical signal, wherein the performance metric includes an average optical power associated with the output optical signal, and wherein the performance metric is determined at the adjustable resonance wavelength; and control logic configured to adjust the resonance wavelength based on the performance metric, without monitoring the input optical signal and without monitoring an input optical-signal power, so that the performance metric is optimized, wherein the monitoring mechanism monitors the performance metric and the control logic adjusts the resonance wavelength during a calibration mode; wherein the adjustable resonance wavelength is locked at a fixed position relative to the carrier wavelength of input optical signal. 12. The system of claim 11 , wherein the control logic adjusts the resonance wavelength by adjusting a temperature of the ring-resonator modulator. 13. The system of claim 12 , wherein the optical device further comprises a heater thermally coupled to the ring-resonator modulator. 14. The system of claim 11 , wherein the control logic adjusts the resonance wavelength using one of: carrier injection, carrier depletion and carrier accumulation. 15. The system of claim 11 , wherein the resonance wavelength is adjusted after a time interval. 16. The system of claim 11 , wherein the monitoring mechanism monitors the performance metric and the control logic adjusts the resonance wavelength during normal operation of the optical device. 17. The system of claim 16 , wherein the resonance wavelength is adjusted continuously. 18. The system of claim 11 , wherein the control logic includes a delta-sigma modulator. 19. The system of claim 11 , wherein the system further comprises: a transmitter that includes the input optical waveguide, the ring-resonator modulator and the output optical waveguide; an optical link optically coupled to the transmitter; and a receiver optically coupled to the optical link, wherein the receiver includes the monitoring mechanism and the control logic; wherein the optical link includes a feedback channel; and wherein, via the feedback channel, the receiver provides feedback signals to the transmitter to adjust the resonance wavelength of the ring-resonator modulator. 20. A method for locking a resonance wavelength of a ring-resonator modulator to a carrier wavelength of an optical signal, wherein the method comprises: providing an input optical signal to the ring-resonator modulator, wherein the input optical signal has the carrier wavelength; monitoring a performance metric associated with an output optical signal from the ring-resonator modulator, wherein the output optical signal has the resonance wavelength, and wherein the performance metric includes an average optical power associated with the output optical signal, and wherein the performance metric is determined at the adjustable resonance wavelength; and adjusting the resonance wavelength based on the performance metric, without monitoring the input optical signal and without monitoring an input optical-signal power, so that the performance metric is optimized, wherein the monitoring mechanism monitors the performance metric and the control logic adjusts the resonance wavelength during a calibration mode; wherein the adjustable resonance wavelength is locked at a fixed position relative to the carrier wavelength of input optical signal.

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Classifications

  • based on thermo-optic effects (G02F1/132 takes precedence) · CPC title

  • G02F1/025Primary

    in an optical waveguide structure (G02F1/017, {G02F1/2257} take precedence) · CPC title

  • involving resonance effects, e.g. resonantly enhanced interaction · CPC title

  • Arrangements comprising a monitoring photodetector · CPC title

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What does patent US9983420B2 cover?
In the optical device, a ring-resonator modulator, having an adjustable resonance (center) wavelength, optically couples an optical signal that includes the carrier wavelength from an input optical waveguide to an output optical waveguide. A monitoring mechanism in the optical device, which is optically coupled to the output optical waveguide, monitors a performance metric of an output optical …
Who is the assignee on this patent?
Oracle Int Corp
What technology area does this patent fall under?
Primary CPC classification G02F1/025. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue May 29 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).