Claims
- 1. A delayed interference all-optical wavelength converter arranged to convert a pulsed input signal Pin at λ1 into a wavelength converted signal Pconv at λ2, where λ1 and λ2 are different, comprising
a modulation section arranged to modulate a signal applied to a first input in accordance with a carrier signal Pcw signal having a wavelength λ2 applied to a second input, an input-signal coupling unit for receiving the pulsed input signal Pin and supplying it to one input of the modulation section, and a delay interference section arranged to receive the output Pint of said modulation section and to transform Pint from a primarily phase modulated signal to a primarily amplitude modulated signal, wherein said converter further includes a wavelength filtering element for filtering at least a portion of signals having the wavelength λ1 of said input signal Pin.
- 2. The invention defined in claim 1 wherein said wavelength filtering element is included in the modulation section.
- 3. The invention defined in claim 2 wherein said modulation section is arranged to filter inputs signals of wavelength λ1 to a greater degree than the filtering of inputs signals of wavelength λ2.
- 4. The invention defined in claim 2 wherein said modulation section includes an absorption material arranged such that it becomes substantially transparent to said carrier signal with wavelength λ2 when said input signal with wavelength λ1 has a power greater than or comparable to said carrier signal.
- 5. The invention defined in claim 1 wherein said wavelength filtering element is included in the coupling unit.
- 6. The invention defined in claim 5 wherein coupling unit is a coupler interposed between said modulation section and said delay interference section, and wherein said input signal Pin is introduced into said coupling unit in a counter propagating manner as compared to said carrier signal Pcw.
- 7. The invention defined in claim 5 wherein coupling unit is a photo-diode arranged to supply an electrical signal to said modulation section in response to receipt of said input signal Pin.
- 8. The invention defined in claim 1 wherein said wavelength filtering element is included in the delay-interference section.
- 9. The invention defined in claim 1 wherein said wavelength filtering element is accomplished through the interaction of said delay interference section with said modulation section.
- 10. The invention defined in claim 1 wherein said wavelength filtering element is a discrete filter interposed between said modulation section and said delay interference section.
- 11. The invention defined in claim 10 wherein said discrete filter is a higher order mode optical filter.
- 12. The invention defined in claim 1 wherein said modulation section comprises an optically nonlinear medium.
- 13. The invention defined in claim 12 wherein said optically nonlinear medium changes its optical characteristics under the influence of light.
- 14. The invention defined in claim 1 wherein said input signal is used to modulate the refractive index of said modulation section.
- 15. The invention defined in claim 1 wherein said delay interference section is arranged to
split the signal output from the modulation section into first and second signals, delay said first signal relative to said second signal, and recombine said delayed first signal with said second signal.
- 16. The invention defined in claim 1 wherein said delay interference section is arranged to create constructive or destructive interference between the signal output from the modulation section and a delayed version thereof, depending on the relative phase relation therebetween.
- 17. A delayed interference all-optical wavelength regenerator arranged to reshape a pulsed input signal Pin into the wavelength converted signal Pconv, where the wavelengths of the input signal and the converted signal are the same, comprising
a modulation section arranged to modulate a signal applied to a first input in accordance with a carrier signal Pcw signal applied to a second input, an input-signal coupling unit for receiving the pulsed input signal Pin and supplying it to one input of the modulation section, and a delay interference section arranged to receive the output Pint of said modulation section and to transform Pint from a primarily phase modulated signal to a primarily amplitude modulated signal, wherein said converter further includes a wavelength filtering element for filtering at least a portion of signals having the wavelength different from the wavelength of said input signal Pin.
- 18. An integrated optical regenerator arranged to convert a pulsed input signal Pin at λ1 into a wavelength converted signal Pconv at λ2, where λ1 and λ2 are different, comprising
a modulator arranged to modulate a carrier having a wavelength λ2 with said pulsed input signal Pin, a coupler for optically coupling said pulsed input signal Pin to said modulator, and a delay interference section for converting the principally phase modulated output of said modulator to a principally amplitude modulated signal, wherein said regenerator is further arranged to filter at least a portion of the optical signals passing through said regenerator having a wavelength λ1.
- 19. An integrated, all optical signal processing element for generating an output signal Pout that represents a reshaped and retimed version of an input signal Pin, comprising
a modulator for generating an intermediate output Pint by phase modulating a carrier signal Pcw with said input signal Pin, and a delay-interference element for combining a first version of said intermediate output Pint with a delayed version thereof, in order to convert said intermediate output Pint to an amplitude modulated signal, wherein said modulator or said delay-interference element includes a filter arranged to remove unwanted wavelengths from said output signal Pout.
- 20. A method for the all-optical conversion of a pulsed input signal Pin at λ1 into a wavelength converted signal Pconv at λ2, where λ1 and λ2 are different, comprising the steps of
generating a modulated signal Pint by modulating a carrier signal Pcw having a wavelength λ2 with said pulsed input signal Pin, transforming said modulated signal Pint from a primarily phase modulated signal to a primarily amplitude modulated signal, and filtering said amplitude-modulated signal to remove at least a portion of said signal having the wavelength λ1 of said input signal Pin.
- 21. An method for converting a pulsed input signal Pin at λ1 into a wavelength converted signal Pconv at λ2, where λ1 and λ2 are different, in an integrated optical regenerator comprising
modulating a carrier having a wavelength λ2 with said pulsed input signal Pin, and converting the principally phase modulated output of said modulator to a principally amplitude modulated signal, wherein said method further includes the step of filtering at least a portion of the optical signals passing through said regenerator having a wavelength λ1.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation in part, and claims the priority of application Ser. No. 09/745785, filed Dec. 22, 2000, and entitled “3R Optical Signal Regeneration”, which application is assigned to the same assignee as the present application. This application claims the priority of Provisional Application Ser. No. 60/276262, filed Mar. 15, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60276262 |
Mar 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09745785 |
Dec 2000 |
US |
| Child |
09871393 |
May 2001 |
US |