Claims
- 1. A waveguide optical monitor comprising:
a plurality of dispersive element input ports; a plurality of photodetectors for sensing an intensity of light incident thereon; and a dispersive element for receiving light from any one of the dispersive element input ports and for dispersing the light toward the plurality of photodetectors in dependence upon a position of said dispersive element input port and a wavelength of the light such that light directed from a first of the plurality of dispersive element input ports toward the plurality photodetectors has associated first centre wavelengths and light directed from the second of the plurality of dispersive element input ports toward the plurality of photodetectors has associated second centre wavelengths, the second centre wavelengths each substantially different from all of the first centre wavelengths.
- 2. A waveguide optical monitor according to claim 1, comprising:
a plurality of input waveguides optically coupled with the dispersive element input ports for guiding light to the dispersive element input ports.
- 3. A waveguide optical monitor according to claim 1, comprising:
a plurality of output waveguides optically coupled between the dispersive element and the plurality of photodetectors.
- 4. A waveguide optical monitor according to claim 1, comprising:
a monitor input port for receiving in optical signal to be monitored; an optical switch in optical communication with the monitor input port and for selectably switching an optical signal received at the monitor input port to any one of the plurality of dispersive element input ports.
- 5. A waveguide optical monitor according to claim 4, wherein the first and second centre wavelengths differ by a fraction of a channel spacing.
- 6. A waveguide optical monitor according to claim 4, wherein the fraction is one half and wherein the plurality of dispersive element input ports consists of two dispersive element input ports.
- 7. A waveguide optical monitor according to claim 4, wherein the fraction is one third and wherein the plurality of dispersive element input ports consists of three dispersive element input ports.
- 8. A waveguide optical monitor according to claim 4, wherein the fraction is one quarter and wherein the plurality of dispersive element input ports consists of four dispersive element input ports.
- 9. A waveguide optical monitor according to claim 4, wherein the waveguide optical monitor is integrated on a single substrate.
- 10. A waveguide optical monitor according to claim 1, wherein the waveguide optical monitor is integrated on a single substrate.
- 11. A waveguide optical monitor according to claim 1, wherein wavelength dispersive element comprises an echelle grating.
- 12. A waveguide optical monitor according to claim 11, wherein wavelength dispersive element is integrated on a single substrate.
- 13. A waveguide optical monitor according to claim 1, comprising a tap.
- 14. A waveguide optical monitor comprising:
an optical input port; a plurality of dispersive element input ports; an optical switch in optical communication with the optical input port and for switching light received at the optical input port to one of the plurality of dispersive element input ports; a plurality of photodetectors for sensing an intensity of light incident thereon; a dispersive element for receiving light from any one of the dispersive element input ports and for dispersing the light toward the plurality of photodetectors in dependence upon a position of said dispersive element input port and a wavelength of the light such that light directed from a first of the plurality of dispersive element input ports toward the plurality of photodetectors has associated first centre wavelengths and light directed from the second of the plurality of dispersive element input ports toward the plurality of photodetectors has associated second centre wavelengths, the second centre wavelengths forming a set different from a set formed by the first centre wavelengths.
- 15. A waveguide optical monitor according to claim 14, comprising:
a plurality of input waveguides optically coupled with the dispersive element input ports for guiding light to the dispersive element input ports.
- 16. A waveguide optical monitor according to claim 14, comprising:
a plurality of output waveguides optically coupled between the dispersive element and the plurality of photodetectors.
- 17. A waveguide optical monitor according to claim 14, wherein the first and second centre wavelengths differ by a fraction of a channel spacing.
- 18. A waveguide optical monitor according to claim 14, wherein the fraction is one half and wherein the plurality of dispersive element input ports consists of two dispersive element input ports.
- 19. A waveguide optical monitor according to claim 14, wherein the fraction is one third and wherein the plurality of dispersive element input ports consists of three dispersive element input ports.
- 20. A waveguide optical monitor according to claim 14, wherein the waveguide optical monitor is integrated on a single substrate.
- 21. A waveguide optical monitor according to claim 14, wherein wavelength dispersive element comprises an echelle grating.
- 22. A waveguide optical monitor according to claim 21, wherein wavelength dispersive element is integrated on a single substrate.
- 23. A waveguide optical monitor according to claim 14, comprising a tap.
- 24. A method of monitoring a wavelength division multiplexed optical signal comprising the steps of:
providing an optical signal to a switch; selecting a switch mode for selectably providing the optical signal via one of a plurality of input ports to a dispersive element; dispersing the optical signal in dependence upon the location of the selected input port and in dependence upon a wavelength of the optical signal and directing the dispersed optical signal toward a plurality of monitoring elements, wherein selecting different switching modes results in light within a different wavelength range being incident upon a same detector.
- 25. A method according to claim 24, wherein the wavelength range and the different wavelength range are within a range of a single wavelength channel.
- 26. A thermally modulated optical channel monitor comprising:
a waveguide made of a material having a temperature dependent refractive index, the waveguide comprising a dispersive element for dispersing received light in dependence upon wavelength; a temperature adjust element for varying the temperature of the waveguide; and, a sensor for sensing an intensity of light incident thereon forming a portion of the received light, the portion varying in dependence upon the waveguide temperature, the sensor for sensing an intensity of light at different waveguide temperatures, the different waveguide temperatures providing for sensing of a signal at different wavelengths.
- 27. A thermally modulated optical channel monitor as defined in claim 1, wherein the temperature dependence of the refractive index is known.
- 28. A thermally modulated optical channel monitor as defined in claim 27, comprising a temperature sensor for sensing a temperature of the waveguide.
- 29. A thermally modulated optical channel monitor as defined in claim 1, wherein the waveguide material is an InP based substrate.
- 30. A thermally modulated optical channel monitor for monitoring an optical signal comprising:
a waveguide made of a material having a temperature dependent refractive index, the waveguide comprising a dispersive element for separating the optical signal into a plurality of separated optical signals based upon wavelength; a temperature adjust element for varying the temperature of the waveguide; at least a sensor for sensing an intensity of light of at least a separated optical signal at different waveguide temperatures, the intensity of light being dependent upon the waveguide temperature, the different waveguide temperatures providing for sensing of the at least a separated optical signal at different wavelengths; and, a monitor sensor for sensing a parameter indicating the waveguide temperature at each instance an intensity of light was sensed.
- 31. A thermally modulated optical channel monitor for monitoring an optical signal as defined in claim 30, wherein each of the separated optical signals corresponds to a channel of the optical signal.
- 32. A thermally modulated optical channel monitor for monitoring an optical signal as defined in claim 31, wherein each of the separated optical signals is correctly separated with respect to its channel wavelength at a known temperature T0 of the waveguide.
- 33. A thermally modulated optical channel monitor for monitoring an optical signal as defined in claim 32, wherein the monitor sensor comprises at least a photodetector for sensing an intensity of light of a monitor signal having a known wavelength prior to propagation through the waveguide incident thereon, the sensed intensity of light varying in dependence upon the waveguide temperature, the sensed intensity providing for determining the waveguide temperature.
- 34. A thermally modulated optical channel monitor for monitoring an optical signal as defined in claim 33, wherein the sensed intensity of light of the monitor signal comprises a first and a second portion.
- 35. A thermally modulated optical channel monitor for monitoring an optical signal as defined in claim 34, wherein the first portion and the second portion of the monitor signal are equal at the temperature T0 of the waveguide.
- 36. A method for monitoring an optical signal comprising the steps of:
providing a waveguide made of a material having a temperature dependent refractive index, the waveguide comprising a dispersive element for dispersing light in dependence upon wavelength; providing a temperature adjust element for varying the temperature of the waveguide; providing a sensor for sensing an intensity of light incident thereon; and, sensing an intensity of light at different waveguide temperatures, the intensity of light being dependent upon the waveguide temperature, the different waveguide temperatures providing for sensing of a signal at different wavelengths.
- 37. A method for monitoring an optical signal as defined in claim 36, comprising the steps of:
providing a monitor signal to the waveguide; sensing an intensity of light of the monitor signal, the sensed intensity of light varying in dependence upon the waveguide temperature; and, determining the waveguide temperature in dependence upon the sensed intensity of light of the monitor signal.
- 38. A method for monitoring an optical signal comprising the steps of:
providing a waveguide made of a material having a temperature dependent refractive index, the waveguide comprising a dispersive element for separating the optical signal into a plurality of separated optical signals based upon wavelength; providing a temperature adjust element for varying the temperature of the waveguide; providing the optical signal to the waveguide; sensing an intensity of light of at least a separated optical signal at different waveguide temperatures, the intensity of light being dependent upon the waveguide temperature, the different waveguide temperatures providing for sensing of the at least a separated optical signal at different wavelengths; sensing a parameter indicating the waveguide temperature at each instance an intensity of light was sensed; and, sampling the intensities of light of the at least a separated optical signal and the corresponding parameters indicating the waveguide temperature.
- 39. A method for monitoring an optical signal as defined in claim 38, wherein each of the separated optical signals corresponds to a channel of the optical signal.
- 40. A method for monitoring an optical signal as defined in claim 39, wherein each of the separated optical signals is correctly separated with respect to its channel wavelength at a known temperature T0 of the waveguide.
Parent Case Info
[0001] This application claims benefit from U.S. Provisional Application No. 60/277,629 filed Mar. 22, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60277629 |
Mar 2001 |
US |