IP Library Granted Patent US 11,362,735
Granted Patent B1
US 11,362,735 · App. 17/099,245 · Granted Jun 14, 2022

Silicon photonics multicarrier optical transceiver

Inventor: Christopher Doerr (Middletown, NJ)
Assignee: Acacia Communications, Inc.
H04B10/40H04B10/505H04B10/506H04B10/541H04B10/556H04B10/60
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Quick Facts
Patent No.
US 11,362,735
App. No.
17/099,245
Granted
Jun 14, 2022
Kind
B1
Abstract

Disclosed herein are techniques, methods, structures and apparatus that provide a silicon photonics multicarrier optical transceiver wherein both the transmitter and receiver are integrated on a single silicon chip and which generates a plurality of carriers through the effect of an on-chip modulator, amplifies the optical power of the carriers through the effect of an off-chip amplifier, and generates M orthogonal sets of carriers through the effect of an on-chip basis former.

Claims (40)

1. An optical transceiver comprising:

a silicon substrate;

first and second transmitter modulators integrated on the silicon substrate;

first and second photodetectors integrated on the silicon substrate;

an integrated tunable laser modulator generating a plurality of output carriers including a first output carrier and a second output carrier;

a first power splitter configured to provide the first output carrier to the first transmitter modulator and to the first photodetector; and

a second power splitter configured to provide the second output carrier to the second transmitter modulator and to the second photodetector.

2. The optical transceiver of claim 1 , further comprising a wavelength demultiplexer configured to provide the first output carrier to the first power splitter and the second output carrier to the second power splitter.

3. The optical transceiver of claim 2 , wherein the wavelength demultiplexer is coupled to the integrated tunable laser through an optical amplifier disposed outside the silicon substrate.

4. The optical transceiver of claim 1 , further comprising:

a third power splitter; and

first and second waveguides having different lengths, wherein the first waveguide couples the third power splitter to the first power splitter and the second waveguide couples the third power splitter to the second power splitter.

5. The optical transceiver of claim 4 , further comprising a third waveguide coupled to the third power splitter, wherein the first waveguide has a first length, the second waveguide has a second length, and the third waveguide has a third length, wherein the first, second, and third lengths conform to a linearly increasing relationship.

6. The optical transceiver of claim 1 , wherein the first photodetector is configured to beat the first output carrier with an input signal and the second photodetector is configured to beat the second output carrier with the input signal.

7. The optical transceiver of claim 1 , wherein the first and/or second transmitter modulators comprises a quadrature phase shift key (QPSK) modulator.

8. The optical transceiver of claim 1 , further comprising a power combiner coupled to the first and second transmitter modulators.

9. An optical transceiver comprising:

a silicon substrate;

first and second transmitter modulators integrated on the silicon substrate;

first and second photodetectors integrated on the silicon substrate;

an integrated tunable laser modulator generating a plurality of output carriers including a first output carrier and a second output carrier; and

a power splitter having first and second outputs,

wherein the first output of the power splitter is configured to provide the first output carrier to the first transmitter modulator and the second output carrier to the second transmitter modulator, and the second output of the power splitter is configured to provide the first output carrier to the first photodetector and the second output carrier to the second photodetector.

10. The optical transceiver of claim 9 , further comprising:

a first wavelength demultiplexer coupled to the first output of the power splitter and configured to provide the first output carrier to the first transmitter modulator and the second output carrier to the second transmitter modulator.

11. The optical transceiver of claim 10 , further comprising:

a second wavelength demultiplexer coupled to the second output of the power splitter and configured to provide the first output carrier to the first photodetector and the second output carrier to the second photodetector.

12. The optical transceiver of claim 9 , wherein the power splitter is a first power splitter, and wherein the optical transceiver further comprises:

a second power splitter coupled to the first output of the first power splitter; and

first and second waveguides having different lengths, the first waveguide coupling the second power splitter to the first transmitter modulator and the second waveguide coupling the second power splitter to the second transmitter modulator.

13. The optical transceiver of claim 12 , further comprising:

a third power splitter coupled to the second output of the first power splitter; and

third and fourth waveguides having different lengths, the third waveguide coupling the third power splitter to the first photodetector and the fourth waveguide coupling the third power splitter to the second photodetector.

14. The optical transceiver of claim 9 , wherein the first photodetector is configured to beat the first output carrier with an input signal and the second photodetector is configured to beat the second output carrier with the input signal.

15. The optical transceiver of claim 9 , wherein the first and/or second transmitter modulators comprises a quadrature phase shift key (QPSK) modulator.

16. An optical transceiver comprising: a silicon substrate; first and second transmitter modulators integrated on the silicon substrate; first and second photodetectors integrated on the silicon substrate; an integrated tunable laser configured to generate a plurality of output carriers including a first output carrier and a second output carrier and a basis former, coupled to the integrated tunable laser, and having a first output port configured to provide the first output carrier to the first transmitter modulator and, separately, to the first photodetector and a second output port configured to provide the second output carrier to the second transmitter modulator and, separately, to the second photodetector.

17. The optical transceiver of claim 16 , wherein the basis former is integrated on the silicon substrate.

18. The optical transceiver of claim 16 , wherein the basis former comprises a wavelength demultiplexer configured to spatially separate the plurality of output carriers.

19. The optical transceiver of claim 16 , wherein the first photodetector is configured to beat the first output carrier with an input signal and the second photodetector is configured to beat the second output carrier with the input signal.

20. The optical transceiver of claim 16 , wherein the basis former comprises a power splitter and first and second output waveguides, the first output waveguide being coupled to the first output port and the second output waveguide being coupled to the second output port, wherein the first output waveguide has a first length and the second output waveguide has a second length different from the first length.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2024
From: ACACIA COMMUNICATIONS, INC.
To: ACACIA TECHNOLOGY, INC.
Reel/Frame 066832/0659 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2022
From: DOERR, CHRISTOPHER
To: ACACIA COMMUNICATIONS, INC.
Reel/Frame 059893/0402 →
Continuity (5)
Continuation 16844305 · Apr 9, 2020
Continuation 16510806 · Jul 12, 2019
Continuation 15971889 · May 4, 2018
Continuation 13894367 · May 14, 2013
Provisional Application 61646517 · May 14, 2012