IP Library › Granted Patent US 10,560,194
Granted Patent B2
US 10,560,194 · App. 16/263,897 · Granted Feb 11, 2020

Minimizing polarization-dependent optical power for PM-M-QAM transmitters

Inventors: Bo Zhang (San Jose, CA); Theodore J. Schmidt (Gilroy, CA); Christian Malouin (San Jose, CA)
Assignee: Juniper Networks, Inc.
H04B10/564H04B10/07955H04B10/50575H04B10/532H04B10/541H04B10/5561H04J14/06
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Quick Facts
Patent No.
US 10,560,194
App. No.
16/263,897
Granted
Feb 11, 2020
Kind
B2
Abstract

A system is configured to determine a first power level of a first signal output from a first modulator, and determine a second power level of a second signal output from a second modulator. The first signal may include a first optical signal associated with a particular polarization orientation, and the second signal may include a second optical signal associated with the particular polarization orientation. The system is configured to determine a relationship between the first power level and the second power level, and to set, based on the relationship between the first power level and the second power level, a reverse bias voltage associated with the first modulator, where the reverse bias voltage may be used to control the first power level of the first signal.

Claims (63)

1. A system, comprising:

one or more devices to:

control a bias point of a tributary modulator of a plurality of tributary modulators;

control a phase relationship between two optical signals,

each optical signal, of the two optical signals, being generated by one of the plurality of tributary modulators;

control a voltage swing of an electrical signal received by the tributary modulator; and

set a reverse bias of the tributary modulator to control a power level of one or more optical signals of the plurality of tributary modulators,

setting the reverse bias being based on at least one of:

a wavelength of an optical signal generated by the tributary modulator,

a polarization orientation of the optical signal generated by the tributary modulator, or

a length of a waveguide via which the optical signal, generated by the tributary modulator, is to be transmitted.

2. The system of claim 1 , where the one or more devices, when controlling the bias point of the tributary modulator, are to:

maintain the bias point, of the tributary modulator, at a specific point on a modulation transfer function associated with the tributary modulator.

3. The system of claim 1 , where the one or more devices, when controlling the bias point of the tributary modulator, are to:

maintain a bias, of the tributary modulator, at the bias point using a feedback loop.

4. The system of claim 1 , where the one or more devices, when controlling the phase relationship between the two optical signals, are to:

maintain a phase relationship of two particular optical signals combined by a modulator at a quadrature phase using a feedback loop.

5. The system of claim 1 , where the one or more devices, when controlling the phase relationship between the two optical signals, are to:

control a phase difference between signals output from two or more of the plurality of tributary modulators.

6. The system of claim 1 , where the one or more devices, when controlling the phase relationship between the two optical signals, are to:

control a phase difference between signals output from two or more parent modulators.

7. The system of claim 1 , where the two optical signals are generated by tributary modulators in a same polarization.

8. A method, comprising:

controlling, by one or more devices, a bias point of a tributary modulator of a plurality of tributary modulators;

controlling, by one or more devices, a phase relationship between two optical signals,

each optical signal, of the two optical signals, being generated by one of the plurality of tributary modulators;

controlling, by one or more devices, a voltage swing of an electrical signal received by the tributary modulator; and

setting a reverse bias of the tributary modulator to control a power level of one or more optical signals of the plurality of tributary modulators,

setting the reverse bias being based on at least one of:

a wavelength of an optical signal generated by the tributary modulator,

a polarization orientation of the optical signal generated by the tributary modulator, or

a length of a waveguide via which the optical signal, generated by the tributary modulator, is to be transmitted.

9. The method of claim 8 , where the electrical signal is an electrical data driving signal.

10. The method of claim 8 , where the electrical signal is used by the tributary modulator to modulate an optical signal with a particular power level and signal quality based on the voltage swing.

11. The method of claim 8 , where controlling the voltage swing comprises:

controlling the voltage swing at a nominal level.

12. The method of claim 8 , where controlling the voltage swing comprises:

controlling a voltage swing associated with one or more parent modulators.

13. The method of claim 8 , where a voltage associated with the voltage swing is used to produce a modulated signal.

14. The method of claim 8 , where controlling the voltage swing comprises:

maintaining the voltage swing between a first predetermined voltage and a second predetermined voltage based on a function.

15. A device, comprising:

a memory; and

one or more processors to:

control a bias point of a tributary modulator of a plurality of tributary modulators;

control, after controlling the bias point of the tributary modulator, a phase relationship between two optical signals,

each optical signal, of the two optical signals, being generated by one of the plurality of tributary modulators;

control, after controlling the phase relationship between the two optical signals, a voltage swing of an electrical signal received by the tributary modulator; and

set, after controlling the voltage swing of the electrical signal, a reverse bias of the tributary modulator to control a power level of one or more optical signals of the plurality of tributary modulators,

setting the reverse bias being based on at least one of:

a wavelength of an optical signal generated by the tributary modulator,

a polarization orientation of the optical signal generated by the tributary modulator, or

a length of a waveguide via which the optical signal, generated by the tributary modulator, is to be transmitted.

16. The device of claim 15 , where the one or more processors, when setting the reverse bias, are to:

set the reverse bias based on an insertion loss associated with the optical signal generated by the tributary modulator.

17. The device of claim 15 , where the one or more processors, when setting the reverse bias of the tributary modulator, are to:

set a reverse bias of an X polarization modulator and a reverse bias of a Y polarization modulator independently.

18. The device of claim 15 , where the one or more processors, when setting the reverse bias, are to:

set the reverse bias using information stored in the memory.

19. The device of claim 15 , where the one or more processors, when setting the reverse bias, are to:

set the reverse bias using a feedback loop.

20. The device of claim 15 , where the one or more processors, when setting the reverse bias, are to:

minimize a transmission power relationship between the plurality of tributary modulators.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 4, 2019
From: ZHANG, BO; SCHMIDT, THEODORE J.; MALOUIN, CHRISTIAN
To: JUNIPER NETWORKS, INC.
Reel/Frame 048228/0668 →
Continuity (3)
Continuation 15225412 · Aug 1, 2016
Division 13711861 · Dec 12, 2012
Related Publication 20190165864A1 · May 30, 2019
Cited By (1)
US 12,328,147