IP Library Granted Patent US 10,468,851
Granted Patent B1
US 10,468,851 · App. 16/133,660 · Granted Nov 5, 2019

Integrated high-power tunable laser with adjustable outputs

Inventor: Christopher Doerr (Middleton, NJ)
Assignee: Acacia Communications, Inc.
H01S5/06246H01S3/10007H01S3/10015H01S3/1301H01S5/0683H01S5/0687H01S5/1025H01S5/1032H01S5/1246H01S5/3224H01S5/3235H01S5/32391H01S5/4062H01S5/50H01S5/0261H01S5/101H01S5/1014
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Quick Facts
Patent No.
US 10,468,851
App. No.
16/133,660
Granted
Nov 5, 2019
Kind
B1
Abstract

A tunable laser that includes an array of parallel optical amplifiers is described. The laser may also include an intracavity N×M coupler that couples power between a cavity mirror and the array of parallel optical amplifiers. Phase adjusters in optical paths between the N×M coupler and the optical amplifiers can be used to adjust an amount of power output from M−1 ports of the N×M coupler. A tunable wavelength filter is incorporated in the laser cavity to select a lasing wavelength.

Claims (41)

1. An optical receiving system comprising:

an N×M coupler of a laser formed in a first semiconductor layer on a first substrate;

a first set of optical paths coupled to the N×M coupler, wherein N and M are nonzero integers and N is greater than or equal to 2; wherein the first set of optical paths are formed in the first semiconductor layer on the first substrate;

phase shifters for one or more of the N input ports of the N×M coupler; wherein the phase shifters are formed on the first semiconductor layer; wherein the phase shifters are coupled to at least two optical paths of the first set of optical paths;

a second layer of semiconductor material on the first substrate;

a second set of optical paths;

optical amplifiers coupled; wherein at least two of the optical amplifiers are coupled to a respective at least two optical paths of the first set or second set of optical paths;

a first cavity reflector of the laser formed on the first substrate that is formed of a first semiconductor material;

at least one second cavity reflector formed on the first substrate that is formed of a second semiconductor material that is different from the first semiconductor material;

a plurality of optical paths within the laser extending between the first cavity reflector and the at least one second cavity reflector;

and

a coherent optical receiver formed on the first substrate and having an optical port connected to an output port from the laser.

2. The optical receiving system of claim 1 , wherein the laser is configured to provide a local oscillator signal to the coherent optical receiver.

3. The optical receiving system of claim 2 , wherein the coherent optical receiver comprises an integrated phase-diverse photonic circuit.

4. The optical receiving system of claim 2 , wherein the coherent optical receiver comprises an integrated polarization-diverse photonic circuit.

5. The optical receiving system of claim 1 , wherein the N×M coupler is arranged in the laser to receive light from the first cavity reflector at a first port of the N×M coupler and to distribute the light to N output ports of the N×M coupler, where N and M are both greater than 1.

6. The optical receiving system of claim 5 , wherein plural output ports of the N output ports connect to the at least two optical paths.

7. The optical receiving system of claim 5 , further comprising:

first microfabricated waveguides coupled to at least some of the N output ports; and second microfabricated waveguides coupled to the plural optical amplifiers.

8. The optical receiving system of claim 5 , further comprising: M−1 power ports connected to the N×M coupler; and

a phase shifter in a first optical path of the plurality of optical paths, wherein the phase shifter is adjustable to alter an amount of power from at least one of the M−1 power ports.

9. The optical receiving system of claim 8 , further comprising:

a detector arranged to sense an optical power from one of the M−1 power ports; and

a feedback circuit arranged to receive a power signal from the detector and alter a phase of the phase shifter responsive to the received power signal.

10. The optical receiving system of claim 8 , wherein a first of the M−1 power ports is connected to the coherent optical receiver, and wherein a second of the M−1 power ports is connected to an optical transmitter that is integrated on the first substrate.

11. The optical receiving system of claim 10 , wherein the optical transmitter comprises a pair of nested Mach-Zehnder interferometers.

12. A method of receiving optical signals, the method comprising: generating a local oscillator signal by a laser that includes a first cavity reflector formed on a first substrate of a first semiconductor material, at least one second cavity reflector formed on a second substrate of the first semiconductor material, a plurality of optical paths within the laser extending between the first cavity reflector and the at least one second cavity reflector, an N×M coupler formed in the laser on the first substrate and coupled to the plurality of optical paths wherein N and M are nonzero integers and N is greater than or equal to 2, and plural optical amplifiers formed on the second substrate in at least two optical paths of the plurality of optical paths;

receiving the optical signals by a coherent optical receiver that is formed on the first substrate and connected to an output port from the laser; and

receiving the local oscillator signal by the coherent optical receiver.

13. The method of claim 12 , further comprising providing the optical signals and the local oscillator signal to a phase-diverse photonic circuit of the coherent optical receiver.

14. The method of claim 12 , further comprising providing the optical signals and the local oscillator signal to a polarization-diverse photonic circuit of the coherent optical receiver.

15. The method of claim 12 , further comprising adjusting an amount of power in the local oscillator signal by adjusting at least one phase shifter located in at least one optical path of the plurality of optical paths.

16. The method of claim 13 , further comprising:

generating a carrier wave with the laser; and

providing the carrier wave to an optical transmitter that is formed on the first substrate.

17. The method of claim 12 , wherein the N×M coupler is arranged in the laser to receive light from the first cavity reflector at a first port of the N×M coupler and to distribute the light to N output ports of the N×M coupler; wherein M−1 power ports are connected to the N×M coupler; and

a phase shifter in a first optical path of the plurality of optical paths, wherein the phase shifter is adjustable to alter an amount of power from at least one of the M−1 power ports.

18. The method of claim 17 , further comprising a detector arranged to sense an optical power from one of the M−1 power ports; and

a feedback circuit arranged to receive a power signal from the detector and alter a phase of the phase shifter responsive to the received power signal.

19. The method of claim 17 , wherein a first of the M−1 power ports is connected to the coherent optical receiver, and wherein a second of the M−1 power ports is connected to an optical transmitter that is integrated on the first substrate.

20. The method of claim 19 , wherein the optical transmitter comprises a pair of nested Mach-Zehnder interferometers.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2024
From: ACACIA COMMUNICATIONS, INC.
To: ACACIA TECHNOLOGY, INC.
Reel/Frame 066832/0659 →
NUNC PRO TUNC ASSIGNMENT Recorded Jan 14, 2019
From: DOERR, CHRISTOPHER
To: ACACIA COMMUNICATIONS, INC.
Reel/Frame 047990/0672 →
Continuity (3)
Continuation 15383555 · Dec 19, 2016
Continuation 14797018 · Jul 10, 2015
Provisional Application 62023483 · Jul 11, 2014