Claims
- 1. An optical transmitter, comprising:
an optical upconverter including a double parallel Mach-Zehnder and first and second electrical oscillators connected to first and second electrical inputs, respectively, of the double parallel Mach-Zehnder; a first feedback circuit responsive to an optical output of the optical upconverter and providing a first feedback signal indicative of a signal component corresponding to an oscillation frequency of the first electrical oscillator; a first variable DC voltage source responsive to the first feedback signal and providing a variable DC voltage bias to the first electrical input, wherein the variable DC voltage source responds to the first feedback signal to reduce the signal component corresponding to the oscillation frequency of the first electrical oscillator.
- 2. The optical transmitter of claim 1, further comprising:
a second feedback circuit responsive to an output of the optical upconverter and providing a second feedback signal indicative of a signal component corresponding to an oscillation frequency of the second electrical oscillator; a second variable DC voltage source responsive to the second feedback signal and providing a variable DC voltage bias to the second electrical input, wherein the variable DC voltage source responds to the second feedback signal to reduce the signal component corresponding to the oscillation frequency of the second electrical oscillator.
- 3. The optical transmitter of claim 2, further comprising:
a third feedback circuit responsive to an output of the optical upconverter and providing a third feedback signal indicative of a signal component corresponding to an oscillation frequency twice that of the first electrical oscillator; a third variable DC voltage source responsive to the third feedback signal and providing a variable DC voltage bias to an electrical phase input to the optical upconverter, wherein the variable DC voltage source responds to the third feedback signal to reduce the signal component corresponding to an oscillation frequency twice that of the first electrical oscillator.
- 4. The optical transmitter of claim 3, wherein the first, second, and third feedback circuits and the first, second, and third variable DC voltage sources are operated simultaneously and iteratively to adjust DC bias voltages to the first and second electrical inputs and to the phase input.
- 5. The optical transmitter of claim 4, wherein the DC bias voltages are adjusted to suppress an optical carrier at the optical output of the optical upconverter, and to provide at the optical output of the optical upconverter at least one single sideband optical signal at a frequency other than a frequency of the optical carrier.
- 6. An optical transmitter, comprising:
an optical upconverter including a double parallel Mach-Zehnder and first and second electrical oscillators connected to first and second electrical inputs, respectively, of the double parallel Mach-Zehnder; a first feedback circuit responsive to an optical output of the optical upconverter and providing a first feedback signal indicative of power at the optical output of the optical upconverter; a first variable DC voltage source responsive to the first feedback signal and providing a variable DC voltage bias to the first electrical input, wherein the variable DC voltage source responds to the first feedback signal to reduce the power at the optical output of the optical upconverter.
- 7. The optical transmitter of claim 6, further comprising:
a second feedback circuit responsive to an optical output of the optical upconverter and providing a second feedback signal indicative of power at the optical output of the optical upconverter; a second variable DC voltage source responsive to the second feedback signal and providing a variable DC voltage bias to the second electrical input, wherein the variable DC voltage source responds to the second feedback signal to reduce the power at the optical output of the optical upconverter.
- 8. The optical transmitter of claim 7, further comprising:
a third feedback circuit responsive to an output of the optical upconverter and providing a third feedback signal indicative of power at the optical output of the optical upconverter; a third variable DC voltage source responsive to the third feedback signal and providing a variable DC voltage bias to an electrical phase input to the optical upconverter, wherein the variable DC voltage source responds to the third feedback signal to reduce the power at the optical output of the optical upconverter.
- 9. The optical transmitter of claim 8, wherein the first, second, and third feedback circuits and the first, second, and third variable DC voltage sources are operate in separate time periods and operate iteratively to adjust DC bias voltages to the first and second electrical inputs and to the phase input so as to minimize the power at the optical output of the optical upconverter during the operation of each of the feedback circuits and variable DC voltage sources.
- 10. The optical transmitter of claim 9, wherein the DC bias voltages are adjusted to suppress an optical carrier at the optical output of the optical upconverter, and to provide at the optical output of the optical upconverter at least one single sideband optical signal at a frequency other than a frequency of the optical carrier.
- 11. An optical transmitter, comprising:
an optical carrier source having an optical carrier output; an optical upconverter having an optical input connected to the output of the optical carrier source, having an optical output, having first and second Mach-Zehnders connected to form a double parallel Mach-Zehnder connected between the optical input and the optical output, wherein the first and second Mach-Zehnders are responsive to signals on first and second electrical inputs, respectively, and having a phase shifter responsive to signals on a phase input and for adjusting relative phase between signals from the first and second Mach-Zehnders; a photodetector having an optical input and an electrical output, wherein the optical input is optically connected to the optical output of the upconverter, a first bias circuit having an input connected to the output of the photodetector and having an output connected to the first electrical input, for providing a bias voltage to the first electrical input to reduce power at the optical output during operation of the first bias circuit; a second bias circuit having an input connected to the output of the photodetector and having an output connected to the second electrical input, for providing a bias voltage to the second electrical input to reduce power at the optical output during operation of the second bias circuit; and a phase bias circuit having an input connected to the output of the photodetector and having an output connected to the phase input, for providing a bias voltage to the phase input to reduce power at the optical output during operation of the phase bias circuit, wherein the first bias circuit, second bias circuit, and phase bias circuit are operated during separate time periods.
- 12. The transmitter of claim 11, wherein each of the first and second bias circuits and the phase bias circuit include:
a variable DC voltage source having an input connected to the output of the photodetector, and having an output; an adder having a first input connected to the output of the variable DC voltage source, a second input, and an output connected to one of the first input, second input, and phase input of the upconverter; and an electrical oscillator having an output connected to the second input of the adder.
- 13. The optical transmitter of claim 11, wherein the first bias circuit, second bias circuit, and phase bias circuit are operated in an iterative manner.
- 14. The optical transmitter of claim 12, wherein the each of the bias circuits include at least one of a filter and an amplifier connected between the photodetector and the variable DC voltage source.
- 15. The optical transmitter of claim 14, wherein each of the bias circuits include a filter and an amplifier series connected between the photodetector and the variable DC voltage source.
- 16. The optical transmitter of claim 11, wherein the phase shifter includes:
an electro-optic material in series with at least one optical path in the upconverter; and input and ground electrodes around the electro-optic material, and wherein the input electrode is connected to the phase input.
- 17. An optical transmitter, comprising:
an optical carrier source having an optical carrier output; an optical upconverter having an optical input connected to the output of the optical carrier source, having an optical output, having first and second Mach-Zehnders connected to form a double parallel Mach-Zehnder connected between the optical input and the optical output, wherein the first and second Mach-Zehnders are responsive to signals on first and second electrical inputs, respectively, and having a phase shifter responsive to signals on a phase input and for adjusting relative phase between signals from the first and second Mach-Zehndes; a photodetector having an optical input and an electrical output, wherein the optical input is optically connected to the optical output of the upconverter, a first bias circuit having a multiplier with first and second inputs and an output, wherein the first input is connected to the output of the photodetector, a variable DC voltage source having an input connected to the output of the multiplier and having an output, an adder having a first input connected to the output of the variable DC voltage source, having a second input, and having an output connected to the first electrical input of the upconverter, and an electrical oscillator having an output connected to the second input of the adder and connected to the second input of the multiplier; a second bias circuit having a multiplier with first and second inputs and an output, wherein the first input is connected to the output of the photodetector, a variable DC voltage source having an input connected to the output of the multiplier and having an output, an adder having a first input connected to the output of the variable DC voltage source, having a second input, and having an output connected to the second electrical input of the upconverter, and an electrical oscillator having an output connected to the second input of the adder and connected to the second input of the multiplier; a phase bias circuit having a multiplier with first and second inputs and an output, wherein the first input is connected to the output of the photodetector, a variable DC voltage source having an input connected to the output of the multiplier and having an output connected to the phase input of the upconverter, and an oscillator connected to the second input of the multiplier.
- 18. The optical transmitter of claim 17, wherein the first and second bias circuits and the phase bias circuit each include at least one of a filter and an amplifier connected between the multiplier and the variable DC voltage source.
- 19. The optical transmitter of claim 17, wherein the first and second bias circuits and the phase bias circuit each include a filter and an amplifier series connected between the multiplier and the variable DC voltage source.
- 20. The optical transmitter of claim 17, wherein the first bias circuit, second bias circuit, and third bias circuit operate simultaneously and iteratively to adjust bias settings in the upconverter.
- 21. The optical transmitter of claim 17, wherein the phase shifter includes:
an electro-optic material in series with at least one optical path in the upconverter; and input and ground electrodes around the electro-optic material, and wherein the input electrode is connected to the phase input.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional application No. 60/186,908, filed Mar. 3, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60186908 |
Mar 2000 |
US |