IP Library Granted Patent US 10,067,305
Granted Patent B2
US 10,067,305 · App. 15/162,487 · Granted Sep 4, 2018

Temperature control of a component on an optical device

Inventor: Dazeng Feng (El Monte, CA)
Assignee: Mellanox Technologies Silicon Photonics Inc.
G02B6/4266G01D5/353G02B6/10G02B6/12004G02B6/1228G02B6/4436G02F1/025G02B2006/12061G02B2006/12097G02B2006/12123G02B2006/12135G02F2001/0157
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Quick Facts
Patent No.
US 10,067,305
App. No.
15/162,487
Granted
Sep 4, 2018
Kind
B2
Abstract

The optical includes a waveguide positioned on a base and an optical component positioned on the base. The optical component is a light sensor that includes an active medium or a modulator that includes an active medium. The waveguide is configured to guide a light signal through the component such that the light signal is guided through the active medium. The device includes one or more heat control features selected from the group consisting of: placing one or more thermal conductors over a lateral side of a ridge of the active medium; extending thermal conductors from within the active component to a location outside of the active component, and tapering the ridge of the active medium within the perimeter of the active component.

Claims (42)

1. An optical device, comprising:

a waveguide positioned on a base and an active component positioned on the base;

the active component including a ridge of an active medium positioned on a base, and

the waveguide configured to guide a light signal through the active component such that the light signal is guided through the ridge of the active medium, and

at least a tapered portion of the ridge of active medium including a taper and the active component is a light modulator configured to apply an electric field to the taper during operation of the active component, and

the active medium being a medium in which the Franz-Keldysh effect occurs in response to the application of the electrical field.

2. The device of claim 1 , wherein the taper is a lateral taper where a distance between lateral sides of the ridge of active medium changes.

3. The device of claim 1 , wherein the active medium includes slab regions that are continuous with the ridge and on opposing sides of the ridge.

4. The device of claim 3 , wherein the tapered portion of the ridge of the active medium is continuous with the slab regions of the active medium.

5. The device of claim 1 , wherein the waveguide includes a ridge of a light-transmitting medium and the waveguide is configured to guide the light signal through an interface between the light-transmitting medium and the active medium.

6. The device of claim 5 , wherein the interface is perpendicular to the base.

7. The device of claim 1 , wherein an untapered portion of the ridge of active medium excludes a taper and the untapered portion of the ridge is continuous with the tapered portion of the ridge.

8. The device of claim 1 , wherein a doped region of the active medium is positioned on a lateral side of the active medium, the lateral side being between a top of the active medium and a bottom of the active medium such that the bottom of the active medium is between the base and the top of the active medium, and

the active medium includes slab regions that are continuous with the ridge of active medium and are positioned on opposing sides of the ridge, and

the doped region is positioned in one of the slab regions such that the doped region extends away from the base of the ridge of active medium, and

the doped region is positioned on a lateral side of the taper.

9. The device of claim 1 , wherein the ridge of active medium includes lateral sides between a top of the active medium and a bottom of the active medium,

the bottom of the active medium being between the base and the top of the active medium, and

sources of the electrical field being on the lateral sides of the active medium.

10. The device of claim 9 , wherein the tapered portion of the ridge includes the lateral sides and the sources of the electrical field are on the lateral sides of the taper.

11. The device of claim 10 , wherein the sources of the electrical field are doped region of the active medium.

12. The device of claim 11 , wherein the waveguide includes a ridge of a light-transmitting medium and the waveguide guides the light signal through an interface between the light-transmitting medium and the active medium.

13. The device of claim 12 , wherein the interface is perpendicular to the base.

14. An optical device, comprising:

a waveguide positioned on a base and an active component positioned on the base;

the active component including a ridge of an active medium positioned on a base, and

the waveguide configured to guide a light signal through the active component such that the light signal is guided through the ridge of the active medium, and

at least a tapered portion of the ridge of active medium including a taper and the active component is a light sensor or a light modulator configured to apply an electric field to the taper during operation of the active component, and

the ridge of active medium including lateral sides between a top of the active medium and a bottom of the active medium,

the bottom of the active medium being between the base and the top of the active medium, and

sources of the electrical field being on the lateral sides of the active medium.

15. The device of claim 14 , wherein the taper is a lateral taper where a distance between lateral sides of the ridge of active medium changes.

16. The device of claim 14 , wherein the active medium includes slab regions that are continuous with the ridge and on opposing sides of the ridge.

17. The device of claim 16 , wherein the tapered portion of the ridge of the active medium is continuous with the slab regions of the active medium.

18. The device of claim 14 , wherein the waveguide includes a ridge of a light-transmitting medium and the waveguide is configured to guide the light signal through an interface between the light-transmitting medium and the active medium.

19. The device of claim 18 , wherein the interface is perpendicular to the base.

20. The device of claim 14 , wherein an untapered portion of the ridge of active medium excludes a taper and the untapered portion of the ridge is continuous with the tapered portion of the ridge.

21. The device of claim 14 , wherein the tapered portion of the ridge includes the lateral sides and the sources of the electrical field are on the lateral sides of the taper.

22. The device of claim 21 , wherein the sources of the electrical field are doped region of the active medium.

23. The device of claim 22 , wherein the waveguide includes a ridge of a light-transmitting medium and the waveguide guides the light signal through an interface between the light-transmitting medium and the active medium.

24. The device of claim 23 , wherein the interface is perpendicular to the base.

25. The device of claim 14 , wherein the active component is a light sensor and the active medium semiconductor that absorbs a portion of the light signal as the light signal is guided through the ridge of the active medium.

Assignments (5)
MERGER Recorded Aug 16, 2023
From: MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
To: MELLANOX TECHNOLOGIES, INC.
Reel/Frame 064602/0330 →
RELEASE OF SECURITY INTEREST IN PATENT COLLATERAL AT REEL/FRAME NO. 42962/0859 Recorded Jul 13, 2018
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: MELLANOX TECHNOLOGIES, LTD.; MELLANOX TECHNOLOGIES TLV LTD.; MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
Reel/Frame 046551/0459 →
CHANGE OF NAME Recorded Nov 11, 2017
From: KOTURA, INC.
To: MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
Reel/Frame 044422/0641 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2017
From: FENG, DAZENG
To: KOTURA, INC.
Reel/Frame 044077/0168 →
SECURITY INTEREST Recorded Jun 23, 2017
From: MELLANOX TECHNOLOGIES, LTD.; MELLANOX TECHNOLOGIES TLV LTD.; MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 042962/0859 →
Continuity (3)
Continuation 14337822 · Jul 22, 2014
Continuation PCTUS2015038152 · Jun 26, 2015
Related Publication 20160266337A1 · Sep 15, 2016
Cited By (1)
US 12,487,398