IP Library › Granted Patent US 11,888,290
Granted Patent B2
US 11,888,290 · App. 18/054,030 · Granted Jan 30, 2024

Supermode filtering waveguide emitters

Inventors: Dominic F. Siriani (Lansdale, PA); Kenneth J. Thomson (San Francisco, CA)
Assignee: Cisco Technology, Inc.
H01S5/1028H01S5/026H01S5/0265H01S5/0651H01S5/0654H01S5/22H01S5/34H01S5/341H01S5/3412H01S5/50
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Quick Facts
Patent No.
US 11,888,290
App. No.
18/054,030
Granted
Jan 30, 2024
Kind
B2
Abstract

An optical apparatus comprises a semiconductor substrate, and a supermode filtering waveguide (SFW) emitter disposed on the semiconductor substrate. The SFW emitter comprises a first optical waveguide, a spacer layer, and a second optical waveguide spaced apart from the first optical waveguide by the spacer layer. The second optical waveguide is evanescently coupled with the first optical waveguide and is configured, in conjunction with the first waveguide, to selectively propagate only a first mode of a plurality of optical modes. The SFW emitter further comprises an optically active region disposed in one of the first optical waveguide and the second optical waveguide.

Claims (56)

1. An optical apparatus comprising:

a semiconductor substrate; and

a supermode filtering waveguide (SFW) emitter disposed on the semiconductor substrate and formed as a first portion extending from a second portion, the SFW emitter comprising:

a first optical waveguide disposed in the second portion;

a spacer layer;

a second optical waveguide disposed in the first portion and spaced apart from the first optical waveguide by the spacer layer, wherein the second optical waveguide is evanescently coupled with the first optical waveguide and configured in conjunction with the first optical waveguide to selectively propagate only a first mode of a plurality of optical modes; and

an optically active region disposed in one of the first optical waveguide and the second optical waveguide.

2. The optical apparatus of claim 1 , wherein the first optical waveguide comprises:

a first optical waveguide layer spaced apart from a second optical waveguide layer; and

a second spacer layer arranged between the first optical waveguide layer and the second optical waveguide layer.

3. The optical apparatus of claim 1 , wherein the second portion comprises a semiconductor material bonded to the semiconductor substrate.

4. The optical apparatus of claim 1 , wherein the first optical waveguide in the second portion is dimensioned to filter out one or more other modes of the plurality of optical modes.

5. The optical apparatus of claim 1 , wherein the optically active region is disposed in the first portion.

6. The optical apparatus of claim 1 , wherein the optically active region is disposed in the second portion.

7. The optical apparatus of claim 1 ,

wherein the second optical waveguide has different widths along a length of the first portion, and

wherein the different widths alter a confinement of the first mode as an optical signal propagates through the second optical waveguide.

8. The optical apparatus of claim 1 , further comprising:

an upper cladding layer arranged above the spacer layer;

a first conductive contact layer arranged above the upper cladding layer;

a lower cladding layer arranged beneath the first optical waveguide; and

a second conductive contact layer arranged at one of: (1) above the spacer layer, and (2) beneath the lower cladding layer.

9. The optical apparatus of claim 1 , wherein the first optical waveguide comprises an alternating arrangement of high effective index layers and low effective index layers.

10. The optical apparatus of claim 1 , wherein the optically active region comprises one or more of quantum wells, quantum dots, and quantum wires.

11. A method of fabricating a supermode filtering waveguide (SFW) emitter, the method comprising:

forming a first cladding layer over a semiconductor substrate;

forming a first optical waveguide above the first cladding layer;

forming a spacer layer above the first optical waveguide;

forming a second optical waveguide above the spacer layer by forming a first portion extending from a second portion, wherein the first optical waveguide is disposed in the second portion, wherein the second optical waveguide is disposed in the first portion, and wherein the second optical waveguide is configured, in conjunction with the first optical waveguide, to selectively propagate only a first mode of a plurality of optical modes;

forming an optically active region in one of the first optical waveguide and the second optical waveguide; and

forming a second cladding layer over the second optical waveguide.

12. The method of claim 11 , wherein the second portion comprises a semiconductor material bonded to the semiconductor substrate.

13. The method of claim 11 , wherein the first optical waveguide in the second portion is dimensioned to filter out one or more other mode of the plurality of optical modes.

14. The method of claim 11 , wherein forming the first portion comprises:

etching to the spacer layer through at least the second cladding layer.

15. The method of claim 11 ,

wherein the second optical waveguide is formed with different widths along a length of the first portion, and

wherein the different widths alter a confinement of the first mode as an optical signal propagates through the second optical waveguide.

16. An optical system comprising:

a photonic chip comprising an optical component having a predefined height relative to a first surface of the photonic chip;

a semiconductor substrate having a second surface; and

a supermode filtering waveguide (SFW) emitter contacting the second surface and formed as a first portion extending from a second portion, the SFW emitter comprising:

a first optical waveguide disposed in the second portion;

a spacer layer;

a second optical waveguide disposed in the first portion and spaced apart from the first optical waveguide by the spacer layer, wherein the second optical waveguide is evanescently coupled with the first optical waveguide and configured, in conjunction with the first optical waveguide, to selectively propagate only a first mode of a plurality of optical modes; and

an optically active region disposed in one of the first optical waveguide and the second optical waveguide,

wherein, when the second surface contacts the first surface, one of the first optical waveguide and the second optical waveguide is optically aligned with the optical component in at least one dimension.

17. The optical system of claim 16 , wherein the second portion comprises a semiconductor material bonded to the semiconductor substrate.

18. The optical system of claim 16 , wherein the semiconductor substrate defines one or more mechanical features relative to the second surface,

wherein the one of the first optical waveguide and the second optical waveguide is optically aligned with the optical component when the one or more mechanical features are contacted with corresponding portions of the photonic chip.

19. The optical system of claim 16 ,

wherein the first surface is defined by an insulator layer of the photonic chip, and

wherein the optical component is formed in the insulator layer.

20. The optical system of claim 19 , wherein a cavity is formed in the insulator layer from the first surface,

wherein the second surface makes contact with the first surface on opposing sides of the cavity, and

wherein the SFW emitter is disposed in the cavity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 9, 2022
From: SIRIANI, DOMINIC F.; THOMSON, KENNETH J.
To: CISCO TECHNOLOGY, INC.
Reel/Frame 061710/0850 →
Continuity (2)
Continuation 16294634 · Mar 6, 2019
Related Publication 20230095386A1 · Mar 30, 2023