IP Library Granted Patent US 10,200,142
Granted Patent B2
US 10,200,142 · App. 15/237,355 · Granted Feb 5, 2019

Broadband high-speed wavelength-division multiplexed receiver using multiple photodetectors per channel

Inventors: Guoliang Li (Albuquerque, NM); Murtaza Askari (Albuquerque, NM)
Assignee: Skorpios Technologies, Inc.
H04J14/02G02B6/00G02B6/12004G02B6/2931G02B6/2938G02B6/43H04B10/60H04B10/675G02B2006/12097
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Quick Facts
Patent No.
US 10,200,142
App. No.
15/237,355
Granted
Feb 5, 2019
Kind
B2
Abstract

An optical receiver, used in wavelength-division multiplexing, has multiple photodetectors per channel. The optical receiver comprises a demultiplexer to separate incoming light into different output waveguides, one output waveguide for each channel. A splitter is used in each output waveguide to split each output waveguide into two or more branches. A separate photodetector is coupled with each branch so that two or more photodetectors are used to measure each channel.

Claims (25)

1. An optical receiver for wavelength-division multiplexing, the optical receiver comprising: a demultiplexer; an input waveguide optically coupled with the demultiplexer; a plurality of output waveguides optically coupled with the demultiplexer, wherein each output waveguide of the plurality of output waveguides is configured to receive light corresponding to a single communication channel of a wavelength-division multiplexed signal; a splitter that divides a first output waveguide of the plurality of output waveguides into a first branch and a second branch; the first branch, wherein the first branch is a waveguide having a width that tapers from the splitter toward a first photodetector; the second branch, wherein the second branch is a waveguide having a width that tapers from the splitter toward a second photodetector; the first photodetector optically coupled with the first branch; and the second photodetector optically coupled with the second branch, wherein the first photodetector is electrically coupled in parallel with the second photodetector to detect optical communication on a first communication channel.

2. The optical receiver of claim 1 , wherein the first photodetector and the second photodetector are lateral PIN diode detectors.

3. The optical receiver of claim 1 , wherein:

the demultiplexer comprises an echelle grating; and

the echelle grating is formed in crystalline silicon.

4. The optical receiver of claim 1 further comprising eight photodetectors for receiving four optical communication channels.

5. The optical receiver of claim 1 , wherein the first output waveguide has an initial width between 14 and 20 μm.

6. The optical receiver of claim 1 , wherein the input waveguide, the demultiplexer, the first output waveguide, the splitter, the first photodetector, and the second photodetector are integrated on a common substrate.

7. The optical receiver of claim 1 , wherein the first output waveguide has a width that tapers from the demultiplexer toward to the splitter.

8. An optical receiver for wavelength-division multiplexing, the optical receiver comprising: a waveguide configured to receive light corresponding to a single communication channel of a wavelength-division multiple access protocol; a splitter that divides the waveguide into a first branch and a second branch; the first branch, wherein the first branch is a waveguide having a width that tapers from the splitter toward a first photodetector; the second branch, wherein the second branch is a waveguide having a width that tapers from the splitter toward a second photodetector; the first photodetector optically coupled with the first branch; and the second photodetector optically coupled with the second branch, wherein the first photodetector is electrically coupled in parallel with the second photodetector to detect optical communication on the single communication channel.

9. The optical receiver of claim 8 , the optical receiver further comprising: a demultiplexer, wherein the waveguide configured to receive light corresponding to the single communication channel is an output waveguide of the demultiplexer; and an input waveguide optically coupled with the demultiplexer, wherein the input waveguide is configured to transmit light, to the demultiplexer, corresponding to multiple optical communication channels of the wavelength-division multiple access protocol.

10. The optical receiver of claim 8 , wherein the waveguide configured to receive light corresponding to the single communication channel has a width between 14 and 20 μm for receiving the single communication channel.

11. The optical receiver of claim 8 , wherein the first photodetector has a width between 0.5 and 2.0 μm.

12. The optical receiver of claim 8 , wherein the first photodetector is made of the same material as the second photodetector.

13. The optical receiver of claim 8 , wherein:

the splitter comprises a ridge taper;

the splitter comprises a shoulder taper; and

the ridge taper narrows before the shoulder taper in a direction of beam propagation.

14. The optical receiver of claim 8 , wherein: the waveguide configured to receive light corresponding to the single communication channel and the splitter are formed in a semiconductor material; the first photodetector comprises a lateral PIN junction; and the waveguide configured to receive light corresponding to the single communication channel, the splitter, the first photodetector, and the second photodetector are integrated on a common semiconductor substrate.

15. The optical receiver of claim 14 , wherein the semiconductor material is crystalline silicon.

16. A method for using an optical receiver in wavelength-division multiplexing, the method comprising: coupling light into an input waveguide, wherein: light coupled into the input waveguide comprises a multiple of wavelengths; and the multiple of wavelengths correspond to a plurality of communication channels in wavelength-division multiplexed communication; transmitting light from the input waveguide to a demultiplexer; separating light, using the demultiplexer, into a multiple of wavelength bands, wherein each wavelength band of the multiple wavelength bands corresponds to a communication channel of the plurality of communication channels; coupling the multiple of wavelength bands into a plurality of output waveguides, wherein: each output waveguide of the plurality of output waveguides receives a wavelength band corresponding to a single communication channel of the plurality of communication channels; and the plurality of output waveguides includes a first output waveguide; splitting light coupled into the first output waveguide into a first branch and a second branch; guiding light in the first branch and in the second branch, wherein: the first branch is waveguide having a width that tapers from a splitter toward a first photodetector; and the second branch is a waveguide having a width that tapers from the splitter toward a second photodetector; and detecting, using the first photodetector and the second photodetector, light coupled into the first output waveguide, wherein the first photodetector and the second photodetector are electrically coupled in parallel to detect optical communication of a first communication channel.

17. The method for using the optical receiver as recited in claim 16 , wherein the first photodetector and the second photodetector are the only photodetectors used to detect optical communication of the first communication channel.

18. The method for using the optical receiver as recited in claim 16 , wherein light coupled into the first branch and into the second branch is split evenly between the first branch and the second branch.

19. The method for using the optical receiver as recited in claim 16 , wherein the input waveguide, the demultiplexer, and the plurality of output waveguides are formed in crystalline silicon.

20. The method for using the optical receiver as recited in claim 16 , wherein the first communication channel has an optical bandwidth of 18 nanometers.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 22, 2017
From: PACIFIC WESTERN BANK
To: SKORPIOS TECHNOLOGIES, INC.
Reel/Frame 044751/0469 →
SECURITY INTEREST Recorded Oct 23, 2017
From: SKORPIOS TECHNOLOGIES, INC.
To: PACIFIC WESTERN BANK
Reel/Frame 043926/0762 →
NUNC PRO TUNC ASSIGNMENT Recorded Feb 16, 2017
From: LI, GUOLIANG; ASKARI, MURTAZA
To: SKORPIOS TECHNOLOGIES, INC.
Reel/Frame 041279/0262 →
Continuity (2)
Provisional Application 62205285 · Aug 14, 2015
Related Publication 20170048016A1 · Feb 16, 2017