IP Library Granted Patent US 12,372,722
Granted Patent B2
US 12,372,722 · App. 18/096,125 · Granted Jul 29, 2025

Multimode waveguide with adiabatic TE0 mode add/drop filter

Inventor: Jean-Luc Joseph Tambasco (Macungie, PA)
Assignee: CISCO TECHNOLOGY, INC.
G02B6/126G02B6/1228G02B6/2773G02B2006/1209G02B2006/12164
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Quick Facts
Patent No.
US 12,372,722
App. No.
18/096,125
Granted
Jul 29, 2025
Kind
B2
Abstract

A device and method are provided. The device includes a bus waveguide having a longitudinal axis, a lower waveguide disposed on a first side of the bus waveguide, and an upper waveguide disposed on a second side of the bus waveguide opposite to the first side of the bus waveguide, wherein the upper waveguide substantially matches a path of the lower waveguide. The method includes receiving a TE 1 mode optical signal on a bus waveguide, receiving a TE 0 mode optical signal on a lower waveguide disposed below the bus waveguide, mode multiplexing the TE 1 mode optical signal and the TE 0 mode optical signal without converting the TE 0 mode optical signal or the TE 1 mode optical signal to another mode, and outputting the TE 0 mode optical signal and the TE 1 mode optical signal on the bus waveguide.

Claims (35)

1. A device comprising:

a bus waveguide having a longitudinal axis;

a lower waveguide disposed on a first side of the bus waveguide; and

an upper waveguide disposed on a second side of the bus waveguide opposite to the first side of the bus waveguide,

wherein the upper waveguide follows at least a portion of a path of the lower waveguide, and opposing longitudinal edges of both the lower waveguide and the upper waveguide, along the at least a portion of the path, are located between longitudinal edges of the bus waveguide.

2. The device of claim 1 , wherein the bus waveguide is arranged linearly from a first end of the device to a second end of the device.

3. The device of claim 2 , wherein the device includes a bend-in region and a taper region,

the lower waveguide translates towards the longitudinal axis and over a first portion of the bus waveguide in the bend-in region, and

the lower waveguide overlaps with a second portion of the bus waveguide in the taper region.

4. The device of claim 3 , wherein the lower waveguide narrows at the second end of the device in the taper region.

5. The device of claim 3 , wherein the upper waveguide translates towards the longitudinal axis and over the first portion of the bus waveguide in the bend-in region.

6. The device of claim 5 , wherein the lower waveguide and the upper waveguide do not overlap with the first portion of the bus waveguide at the first end of the device in the bend-in region.

7. The device of claim 6 , wherein the upper waveguide follows a path of the lower waveguide in the bend-in region, creating a pseudo-symmetry about the longitudinal axis of the bus waveguide to avoid TE 1 -TM 0 mode hybridization of an optical signal that traverses the bus waveguide.

8. The device of claim 1 , wherein the bus waveguide is comprised of silicon nitride, the lower waveguide is comprised of silicon, and the upper waveguide is comprised of silicon nitride.

9. The device of claim 1 , wherein the lower waveguide and the upper waveguide are asymmetrically distanced from the bus waveguide.

10. The device of claim 1 , wherein the bus waveguide, the lower waveguide, and the upper waveguide are configured to mode multiplex a first TE 0 mode optical signal with a first TE 1 mode optical signal, without converting the first TE 0 mode optical signal into a second TE 1 mode optical signal, and without converting the first TE 1 mode optical signal into a second TE 0 mode optical signal.

11. A device comprising:

a bus waveguide having a longitudinal axis, wherein the bus waveguide is arranged linearly from a first end of the device to a second end of the device;

a lower waveguide disposed below the bus waveguide, the lower waveguide translating from a non-overlapping position with respect to the bus waveguide to an overlapping position with respect to the bus waveguide as the lower waveguide extends from the first end of the device to the second end of the device, the lower waveguide tapering in the overlapping position towards the second end of the device; and

an upper waveguide disposed above the bus waveguide and that extends along at least a portion of a path of the lower waveguide,

wherein opposing longitudinal edges of both the lower waveguide and the upper waveguide, along the at least a portion of the path of the lower waveguide, are located between longitudinal edges of the bus waveguide.

12. The device of claim 11 , wherein the lower waveguide does not overlap with a first portion of the bus waveguide at the first end of the device.

13. The device of claim 11 , wherein the lower waveguide tapers along a portion thereof that extends along the longitudinal axis.

14. The device of claim 11 , wherein the bus waveguide is comprised of silicon nitride, the lower waveguide is comprised of silicon, and the upper waveguide is comprised of silicon nitride.

15. The device of claim 11 , wherein the bus waveguide, the lower waveguide, and the upper waveguide are configured to mode multiplex a first TE 0 mode optical signal with a first TE 1 mode optical signal, without converting the first TE 0 mode optical signal into a second TE 1 mode optical signal, and without converting the first TE 1 mode optical signal into a second TE 0 mode optical signal.

16. A method comprising:

receiving a TE 1 mode optical signal on a bus waveguide;

receiving a TE 0 mode optical signal on a lower waveguide that is disposed on a layer below the bus waveguide;

causing the TE 0 mode optical signal on a lower waveguide to interact with an upper waveguide disposed on a layer above the bus waveguide to mode multiplex the TE 1 mode optical signal and the TE 0 mode optical signal without converting the TE 0 mode optical signal or the TE 1 mode optical signal to another mode; and

outputting the TE 0 mode optical signal and the TE 1 mode optical signal on the bus waveguide,

wherein opposing longitudinal edges of both the lower waveguide and the upper waveguide, along at least a portion of respective paths of the lower waveguide and the upper waveguide, are located between longitudinal edges of the bus waveguide.

17. The method of claim 16 , wherein the bus waveguide is comprised of silicon nitride, and the lower waveguide is comprised of silicon.

18. The method of claim 17 , further comprising creating a pseudo-symmetry about a longitudinal axis of the bus waveguide to prevent TE 1 -TM 0 mode hybridization of an optical signal that traverses the bus waveguide.

19. The method of claim 18 , wherein the pseudo-symmetry is achieved with the lower waveguide and the upper waveguide follow matching paths.

20. The method of claim 19 , wherein the upper waveguide is comprised of silicon nitride.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2023
From: TAMBASCO, JEAN-LUC JOSEPH
To: CISCO TECHNOLOGY, INC.
Reel/Frame 062358/0436 →
Continuity (1)
Related Publication 20240241315A1 · Jul 18, 2024
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