IP Library Granted Patent US 12,510,708
Granted Patent B2
US 12,510,708 · App. 17/902,249 · Granted Dec 30, 2025

Bilayer silicon nitride polarization mode converter

Inventors: Jean-Luc J. Tambasco (Macungie, PA); Jonathan Edgar Roth (San Mateo, CA)
Assignee: CISCO TECHNOLOGY, INC.
G02B6/126G02B6/125G02B6/14G02B2006/12061G02B2006/1215
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,510,708
App. No.
17/902,249
Granted
Dec 30, 2025
Kind
B2
Abstract

A polarization rotator includes a bus waveguide disposed on a first layer having a longitudinal axis, a first end, and a second end, and a first upper waveguide and a second upper waveguide disposed on a second layer, above the first layer, the first upper waveguide and the second upper waveguide widening as the first upper waveguide and the second upper waveguide extend from the first end to the second end. The first upper waveguide and the second upper waveguide may also symmetrically bend toward each other and then away from each other proximate the second end.

Claims (33)

1 . A device, comprising:

a bus waveguide disposed on a first layer, the bus waveguide having a first end, a second end, and a longitudinal axis that extends between the first end and the second end; and

a first upper waveguide and a second upper waveguide disposed on a second layer, above the first layer, the first upper waveguide having a first inner arcuate edge and a first outer arcuate edge and the second upper waveguide having a second inner arcuate edge and a second outer arcuate edge, the first upper waveguide and the second upper waveguide widening as the first upper waveguide and the second upper waveguide extend from the first end to the second end,

wherein the first upper waveguide and the second upper waveguide symmetrically bend toward each other and then away from each other across the longitudinal axis, proximate the second end, such that an inner distance between the first inner arcuate edge and the second inner arcuate edge decreases and then increases as the first upper waveguide and the second upper waveguide extend from the first end to the second end, and such that an outer distance between the first outer arcuate edge and the second outer arcuate edge decreases and then increases as the first upper waveguide and the second upper waveguide extend from the first end to the second end, and

wherein at least the first inner arcuate edge and the second inner arcuate edge overlap the bus waveguide.

2 . The device of claim 1 , wherein the bus waveguide narrows proximate the second end.

3 . The device of claim 1 , wherein, in a first region of the device, cross-sectional dimensions of the bus waveguide remain substantially unchanged.

4 . The device of claim 1 , wherein the bus waveguide is configured to carry transverse electric optical mode light and transverse magnetic optical mode light.

5 . The device of claim 1 , wherein the bus waveguide is comprised of silicon nitride.

6 . The device of claim 1 , wherein the first upper waveguide and the second upper waveguide are configured to hybridize transverse magnetic mode light, introduced into the first end of the bus waveguide, to transverse electric mode light.

7 . The device of claim 1 , wherein the first upper waveguide and the second upper waveguide are configured to pass transverse electric mode light introduced into the first end of the bus waveguide.

8 . The device of claim 1 , wherein, toward the first end, a position of inner edges of the first upper waveguide and the second upper waveguide remains substantially unchanged relative to the longitudinal axis as the first upper waveguide and the second upper waveguide extend from the first end to the second end.

9 . The device of claim 1 , wherein outer edges of the first upper waveguide and the second upper waveguide translate away from the longitudinal axis as the first upper waveguide and the second upper waveguide extend from the first end to the second end.

10 . The device of claim 1 , further comprising an adiabatic 2×2 coupler optically coupled to output ends of the first upper waveguide and the second upper waveguide.

11 . A device, comprising:

a bus waveguide having a first end and a second end; and

a pair of waveguides that overlie the bus waveguide and that are translated over the bus waveguide, a first one of the pair of waveguides having a first inner arcuate edge and a first outer arcuate edge and a second one of the pair of waveguides having a second inner arcuate edge and a second outer arcuate edge,

wherein the first one of pair of waveguides and the second one of the pair of waveguides symmetrically bend toward each other and then away from each other across a longitudinal axis of the bus waveguide proximate the second end of the bus waveguide, such that an inner distance between the first inner arcuate edge and the second inner arcuate edge decreases and then increases as the first one of the pair of waveguides and the second one of the pair of waveguides extend from the first end to the second end, and such that an outer distance between the first outer arcuate edge and the second outer arcuate edge decreases and then increases as the first one of the pair of waveguides and the second one of the pair of waveguides extend from the first end to the second end, and

wherein at least the first inner arcuate edge and the second inner arcuate edge overlap the bus waveguide.

12 . The device of claim 11 , wherein the pair of waveguides widens as the pair of waveguides extends from the first end of the bus waveguide to the second end of the bus waveguide.

13 . The device of claim 11 , wherein the bus waveguide is configured to carry transverse electric optical mode light and transverse magnetic optical mode light.

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

15 . The device of claim 11 , wherein the pair of waveguides is configured to hybridize transverse magnetic mode light, introduced into the first end of the bus waveguide, to transverse electric mode light.

16 . The device of claim 11 , wherein a position of inner edges of the pair of waveguides, toward the first end, remains substantially unchanged relative to the longitudinal axis of the bus waveguide as the pair of waveguides extend from the first end to the second end.

17 . The device of claim 11 , wherein outer edges of the pair of waveguides translate away from a longitudinal axis of the bus waveguide as the pair of waveguides extend from the first end to the second end.

18 . A device comprising:

a bus waveguide having a first end and a second end, the first end configured to receive both transverse electric mode light and transverse magnetic mode light, the bus waveguide extending in a longitudinal direction along a longitudinal axis and narrowing to a tip towards the second end; and

a pair of waveguides that overlie the bus waveguide and that are translated over the bus waveguide,

wherein a first one of the pair of waveguides has a first inner arcuate edge and a first outer arcuate edge and a second one of the pair of waveguides has a second inner arcuate edge and a second outer arcuate edge, and

wherein the first one of the pair of waveguides and the second one of the pair of waveguides symmetrically bend toward each other and then away from each other across the longitudinal axis of the bus waveguide proximate the second end of the bus waveguide, such that an inner distance between the first inner arcuate edge and the second inner arcuate edge decreases and then increases as the first one of the pair of waveguides and the second one of the pair of waveguides extend from the first end to the second end, and such that an outer distance between the first outer arcuate edge and the second outer arcuate edge decreases and then increases as the first one of the pair of waveguides and the second one of the pair of waveguides extend from the first end to the second end, and

wherein at least the first inner arcuate edge and the second inner arcuate edge overlap the bus waveguide.

19 . The device of claim 18 , wherein each of the first one of the pair of waveguides and the second one of the pair of waveguides widens as the pair of waveguides extend from the first end to the second end.

20 . The device of claim 18 , wherein the device is configured to output transverse electric mode light via the pair of waveguides by hybridizing the transverse magnetic mode light to transverse electric mode light.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2022
From: TAMBASCO, JEAN-LUC J.; ROTH, JONATHAN EDGAR
To: CISCO TECHNOLOGY, INC.
Reel/Frame 060983/0621 →
Continuity (1)
Related Publication 20240077674A1 · Mar 7, 2024
References Cited (48)
US 5418867A · Van Der Tol · 1995 [cited by examiner]
US 5524156A · Van Der Tol · 1996 [cited by applicant]
US 5696856A · Van Der Tol · 1997 [cited by examiner]
US 5878181A · Van Der Tol · 1999 [cited by examiner]
US 7702188B2 · Little · 2010 [cited by examiner]
US 8855449B1 · Roth · 2014 [cited by applicant]
US 9091813B2 · Dallesasse · 2015 [cited by examiner]
US 9122006B1 · Roth · 2015 [cited by examiner]
US 9529151B2 · Goi · 2016 [cited by examiner]
US 9817186B2 · Kamei · 2017 [cited by examiner]
US 9874696B2 · Liu · 2018 [cited by examiner]
US 9989702B2 · Doany · 2018 [cited by examiner]
US 10191214B2 · Dong · 2019 [cited by examiner]
US 10302866B2 · Lin · 2019 [cited by examiner]
US 10345522B2 · Daniel · 2019 [cited by examiner]
US 10488590B2 · Park · 2019 [cited by examiner]
US 10667987B2 · Dumais · 2020 [cited by applicant]
US 10677987B1 · Dumais · 2020 [cited by examiner]
US 10841012B2 · Wang · 2020 [cited by examiner]
US 11402581B2 · Baba · 2022 [cited by applicant]
US 11409044B2 · Su · 2022 [cited by examiner]
US 11747559B2 · Bian · 2023 [cited by examiner]
US 20080226224A1 · Blauvelt · 2008 [cited by examiner]
US 20100271634A1 · Dominguez Horna et al. · 2010 [cited by applicant]
US 20140133796A1 · Dong · 2014 [cited by examiner]
US 20160131842A1 · Mahgerefteh · 2016 [cited by examiner]
US 20170199330A1 · Doany · 2017 [cited by examiner]
US 20180017732A1 · Tassaert · 2018 [cited by examiner]
US 20180149810A1 · Park · 2018 [cited by examiner]
US 20180314005A1 · Lin · 2018 [cited by examiner]
US 20190025506A1 · Park · 2019 [cited by examiner]
US 20190222309A1 · Gross et al. · 2019 [cited by applicant]
US 20190310424A1 · Lamponi · 2019 [cited by examiner]
US 20210405308A1 · Bhargava · 2021 [cited by examiner]
US 20230251440A1 · Fini · 2023 [cited by examiner]
US 20230384519A1 · Huang · 2023 [cited by examiner]
WO 2021222714A1 · 2021 [cited by applicant]
“Globalfoundries Silicon Photonics Platform,” Global Foundries, Japan SOI Design Workshop, Oct. 25 & 26, 2018, 16 pages. [cited by applicant]
Sean P. Anderson, et al., “Silicon Photonic Polarization-Multiplexing Nanotaper for Chip-to-Fiber Coupling,” IEEE Xplore, Journal of Lightwave Technology, JLT-17965-2015.R2, Nov. 2015, 7 pages. [cited by applicant]
Wesley D. Sacher, et al., “Polarization rotator-splitters in standard active silicon photonics platforms,” Optics Express, vol. 22, No. 4, DOI:10.1364/OE.22.003777, Feb. 24, 2014, 10 pages. [cited by applicant]
Kang Tan, et al., “Three-Dimensional Polarization Splitter and Rotator Based on Multi-Layer Si3N4-On-SOI Platform,” IEEE, 978-1-5090-1035-6, Po2.4-1, 2016 International Conference on Optical Mems and Nanophotonics (OMN)… [cited by applicant]
Daoxin Dai, et al., “Novel concept for ultracompact polarization splitter-rotator based on silicon nanowires,” Optics Express, vol. 19, No. 11, May 23, 2011, 10 pages. [cited by applicant]
Luis Torrijos Moráan, “Photonic applications based on bimodal interferometry in periodic integrated waveguides,” Doctoral Thesis, Universitat Politecnica de Valencia, Departamento de Comunicaciones, Jul. 2021, 210 pages. [cited by applicant]
Ding, et al., “Wideband polarization splitter and rotator with large fabrication tolerance and simple fabrication process,” Optics Letters, vol. 38, No. 8, Apr. 15, 2013, 3 pages. [cited by applicant]
Ma, et al., “Symmetrical polarization splitter/rotator design and application in a polarization insensitive WDM receiver,” Optics Express 16053, vol. 23, No. 12, Jun. 15, 2015, 11 pages. [cited by applicant]
Sacher, et al., “Polarization rotator-splitters and controllers in a Si3N4-on-SOI integrated photonics platform,” Optics Express 11167, vol. 22, No. 9, May 5, 2014, 8 pages. [cited by applicant]
Sacher, et al., “Polarization rotator-splitters in standard active silicon photonics platforms,” Optics Express 3777, vol. 22, No. 4, Feb. 24, 2014, 10 pages. [cited by applicant]
Wang D., et al., “Broadband and Compact Polarization Beam Splitter Based on an Asymmetrical Directional Coupler with Extra Optimizing Designs,” Applied Optics, Optica Publishing Group, Oct. 17, 2019, vol. 58, No. 30, 2 … [cited by applicant]