IP Library Patent Application 13689215
Patent Application
App. No. 13/689,215

Optical Receiver with a Wide Power Sensitivity Dynamic Range

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Quick Facts
Patent No.
US None
App. No.
13/689,215
Abstract

An optical receiver system includes a power adjustment device, an optical receiver, and a controller. The power adjustment device adjusts the power of an optical input signal in accordance with adjustment instructions. The optical receiver converts the power-adjusted optical input signal into an electrical signal that corresponds to a desired channel of the optical input signal. The optical receiver includes an electronic amplifier that amplifies the electrical signal using a gain value, and the amplified electrical signal preferably operates around a voltage value V opt . The controller determines adjustment instructions such that the power adjustment device adjusts the optical input signal to a target optical power level that corresponds to V opt for the amplified electrical signal, wherein the adjustment instructions are derived from the amplified electrical signal.

Claims (71)

1 . An optical receiver system comprising:

a power adjustment device that adjusts a power of an optical multi-channel input signal in accordance with adjustment instructions, the optical multi-channel input signal comprising multiple channels of data at different wavelengths;

an optical receiver which converts the power-adjusted optical multi-channel input signal into an electrical single-channel output signal that corresponds to a selected channel from among the multiple channels, wherein the optical receiver includes an electronic amplifier that produces the electrical single-channel output signal and the optical receiver is characterized by a preferred output voltage V opt for the electrical single-channel output signal; and

a controller that determines the adjustment instructions in response to the electrical single-channel output signal, the adjustment instructions causing the power adjustment device to adjust the power of the optical multi-channel input signal to a target optical power level corresponding to the preferred output voltage V opt of the electrical single-channel output signal.

2 . The optical receiver system of claim 1 , wherein the preferred output voltage V opt for the electrical single-channel output signal is a preferred input voltage for amplifier receiving device.

3 . The optical receiver system of claim 1 , wherein the preferred output voltage V opt minimizes an OSNR penalty for the optical receiver system.

4 . The optical receiver system of claim 1 , wherein the power adjustment device is a variable optical attenuator.

5 . The optical receiver system of claim 1 , wherein the power adjustment device is a variable gain optical amplifier.

6 . The optical receiver system of claim 1 , further comprising:

an electronic signal monitor that outputs a sensor output signal that is based on the electrical single-channel output signal; and

wherein the controller is further configured to:

determine a channel feedback signal based on the sensor output signal,

compare the channel feedback signal to a calibrated signal value, the calibrated signal value corresponding to the preferred output voltage V opt ,

determine the adjustment instructions based on the comparison.

7 . The optical receiver system of claim 1 , further comprising:

an electronic signal monitor that outputs a sensor output signal that is based on the electrical single-channel output signal; and

wherein the controller and the electronic amplifier are part of a first feedback loop, and the controller and the power adjustment device are part of a second feedback loop that operates on a similar time scale as the first feedback loop, and the controller is further configured to determine an electrical gain value based on the sensor output signal and to provide the gain value to the electronic amplifier.

8 . The optical receiver system of claim 7 , wherein the controller is configured to, at any point in time, either adjust the electrical gain value or provide adjustment instructions to adjust a level of optical attenuation or gain of the power adjustment device.

9 . The optical receiver system of claim 7 , wherein the controller is configured to:

fix the electrical gain value at a predetermined gain value when providing adjustment instructions to adjust the level of optical attenuation or gain of the power adjustment device; and

fix the level of attenuation or gain of the power adjustment device at a predetermined level when adjusting the gain value of the electronic amplifier.

10 . The optical receiver system of claim 9 , wherein the predetermined level corresponds to a minimum level of attenuation produced by the power adjustment device.

11 . The optical receiver system of claim 7 , wherein the controller is configured to increase the gain of the electronic amplifier when the channel feedback signal is less than the calibrated signal value.

12 . The optical receiver system of claim 1 , further comprising:

an electronic signal monitor that outputs a sensor output signal that is based on the electrical single-channel output signal; and

an electronic amplifier controller configured to:

determine a channel feedback signal based on the sensor output signal,

compare the channel feedback signal to a calibrated signal value, the calibrated signal value corresponding to the preferred output voltage V opt ,

determine a gain value for the electronic amplifier based on the comparison, and

provide the electronic amplifier with the gain value; and

wherein the electronic amplifier controller and the electronic amplifier are part of a first feedback loop, and the controller and the power adjustment device are part of a second feedback loop that operates on a slower time scale than the first feedback loop, and the controller is further configured to:

determine a gain value feedback signal using the gain value, and

determine adjustment instructions when the gain value feedback signal is not equal to a calibrated signal gain value.

13 . The optical receiver system of claim 1 , wherein the electronic amplifier is a single ended amplifier.

14 . The optical receiver system of claim 1 , wherein the electronic amplifier is a differential amplifier.

15 . The optical receiver system of claim 1 wherein the optical receiver further comprises:

a local oscillator laser that produces an output tuned to the selected channel of the optical multi-channel input signal;

a first electronic signal monitor that outputs a sensor output signal that is based on the electrical single-channel output signal;

a second electronic amplifier, that produces a second electrical single-channel output signal; and

a second electronic signal monitor that outputs a second sensor output signal that is based on the second electrical single-channel output signal.

16 . The optical receiver system of claim 15 , wherein the controller is configured to determine a channel feedback signal using the first and second electrical single-channel output signals.

17 . The optical receiver system of claim 16 , wherein a channel feedback signal is selected from the group consisting of: one of the sensor output signals, the maximum of the sensor output signals, and the average of sensor output signals.

18 . The optical receiver system of claim 15 , further comprising:

an electronic amplifier controller configured to:

determine the second gain value; and

determine a radio frequency feedback signal using the first and second amplified electronic signals.

19 . The optical receiver system of claim 15 , further comprising a second power adjustment device configured to adjust a power of the output of the local oscillator laser in accordance with adjustment instructions received from the controller.

20 . The optical receiver system of claim 15 , wherein the controller is configured to adjust the power of the local oscillator laser in accordance with adjustment instructions received from the controller.

21 . A method of operation for an optical receiver comprising:

converting a power-adjusted optical multi-channel input signal into an electrical single-channel output signal that corresponds to a selected channel from among the multiple channels, wherein the optical receiver includes an electronic amplifier that produces the electrical single-channel output signal and the optical receiver is characterized by a preferred output voltage V opt for the electrical single-channel output signal, and the optical multi-channel input signal comprises multiple channels of data at different wavelengths;

determining a channel feedback signal based on the electrical single-channel output signal;

comparing the channel feedback signal to a calibrated signal value, the calibrated signal value corresponding to the preferred output voltage V opt ; and

determining adjustment instructions, by a controller, to adjust the optical multi-channel input signal, the adjustment instructions causing a power adjustment device to adjust the power of the optical multi-channel input signal to a target optical power level corresponding to the preferred output voltage V opt .

22 . The method of claim 21 , further comprising:

determining an electrical gain value, by the controller, for an electronic amplifier based on the comparison; and

providing the gain value to the electronic amplifier, wherein the controller and the electronic amplifier are part of a first feedback loop, and the controller and the power adjustment device are part of a second feedback loop that operates on a similar time scale as the first feedback loop.

23 . The method of claim 21 , wherein the controller, at any point in time, adjusts the electrical gain value or provides adjustment instructions to adjust a level of optical attenuation or gain of the power adjustment device.

24 . The method of claim 22 , further comprising:

fixing the electrical gain value at a predetermined gain value when providing adjustment instructions to adjust the level of optical attenuation or gain of the power adjustment device; and

fixing the level of attenuation or gain of the power adjustment device at a predetermined level when adjusting the gain value of the electronic amplifier.

25 . A method of operation for an optical receiver comprising:

converting a power-adjusted optical multi-channel input signal into an electrical single-channel output signal that corresponds to a selected channel from among the multiple channels, wherein the optical receiver includes an electronic amplifier that produces the electrical single-channel output signal and the optical receiver is characterized by a preferred output voltage V opt for the electrical single-channel output signal, and the optical multi-channel input signal comprises multiple channels of data at different wavelengths;

determining a channel feedback signal based on the electrical single-channel output signal;

comparing the channel feedback signal to a calibrated signal value, the calibrated signal value corresponding to a preferred output voltage V opt ;

determining, by an electronic amplifier controller, a gain value for an electronic amplifier based on the comparison;

adjusting the level of the electrical single-channel output signal using the gain value;

determining a feedback signal using an electrical signal;

determining, by a controller, adjustment instructions to adjust the optical multi-channel input signal when the feedback signal is not equal to a calibrated value, the adjustment instructions causing a power adjustment device to adjust the power of the optical multi-channel input signal until the electrical signal equals the calibrated signal value, wherein the electronic amplifier controller and the electronic amplifier are part of a first feedback loop, and the controller and the power adjustment device are part of a second feedback loop that operates on a slower time scale than the first feedback loop; and

adjusting the power level of the optical multi-channel input signal based on the adjustment instructions.

26 . The method of claim 25 , wherein the electrical signal is determined using the gain value.

27 . The method of claim 25 , wherein the electrical signal is determined using an electrical input signal to the electronic amplifier.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded May 9, 2017
From: SILICON VALLEY BANK
To: OCLARO, INC.; OCLARO TECHNOLOGY, INC.; OCLARO (NORTH AMERICA), INC.; MINTERA CORPORATION; OPNEXT, INC.; PINE PHOTONICS COMMUNICATIONS, INC.; OPNEXT SUBSYSTEMS INC.; BOOKHAM NOMINEES LIMITED; OCLARO TECHNOLOGY LIMITED; OCLARO INNOVATIONS LLP
Reel/Frame 042430/0235 →
SECURITY INTEREST Recorded Apr 2, 2014
From: OCLARO, INC.; OCLARO TECHNOLOGY, INC.; OCLARO (NORTH AMERICA), INC.; MINTERA CORPORATION; OPNEXT, INC.; PINE PHOTONICS COMMUNICATIONS, INC.; OPNEXT SUBSYSTEMS INC.; BOOKHAM NOMINEES LIMITED; OCLARO TECHNOLOGY LIMITED; OCLARO INNOVATIONS LLP
To: SILICON VALLEY BANK
Reel/Frame 032589/0948 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2012
From: MAMYSHEV, PAVEL
To: OCLARO, INC.
Reel/Frame 029376/0751 →