IP Library Granted Patent US 7,184,627
Granted Patent B1
US 7,184,627 · App. 11/281,776 · Granted Feb 27, 2007

Optical waveguide grating coupler incorporating reflective optical elements and anti-reflection elements

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Quick Facts
Patent No.
US 7,184,627
App. No.
11/281,776
Granted
Feb 27, 2007
Kind
B1
Abstract

An optical wavelength grating coupler incorporating one or more distributed Bragg reflectors (DBR) or other reflective elements to enhance the coupling efficiency thereof. The grating coupler has a grating comprising a plurality of scattering elements adapted to scatter light along a portion of an optical path, and the one or more DBRs are positioned with respect to the grating such that light passing through the grating towards the substrate of the grating coupler is reflected back by DBRs toward the grating. The DBR comprises a multilayer stack of various materials and may be formed on the substrate of the grating coupler. The grating coupler may include a gas-filled cavity, where the cavity is formed by a conventional etching process and is used to reflect light toward the grating. The grating coupler may also incorporate an anti-reflection coating to reduce reflective loss on the surface of the grating.

Claims (20)

1. A waveguide grating coupler for coupling light between a waveguide and an optical element having a substantially Gaussian mode profile, said waveguide grating coupler comprising:

a planar guiding portion optically connected to said waveguide, said planar guiding portion having first and second ends and an optical power distribution therein that decreases between said first and second ends; and

a plurality of elongate scattering elements having respective scatter cross-sections arranged along at least a portion of said planar guiding portion to couple light having a substantially Gaussian intensity distribution between said planar guiding portion and said optical element, said elongate scattering elements having at least one characteristic which varies in magnitude among at least a group of said elongate scattering elements, said magnitude of said characteristic controlling at least in part said scatter cross-sections of said elongate scattering elements,

wherein said magnitude of said characteristic of said group of elongate scattering elements varies irregularly, said magnitude for said group of elongate scattering elements changing with position along said planar guiding portion at a rate that is discontinuous,

wherein (i) said plurality of elongate scattering elements have respective scatter cross-sections adapted to scatter light along at least a portion of a predetermined optical path and (ii) said planar guiding portion further comprises a Distributed Bragg Reflector (DBR) positioned with respect to said elongate scattering elements such that light scattered outside said portion of said optical path is reflected by said DBR towards said elongate scattering elements.

2. The waveguide grating coupler of claim 1 , wherein said DBR comprises a multilayer stack comprising multiple layers of material.

3. The waveguide grating coupler of claim 2 , wherein said DBR comprises alternating layers of semiconductor and dielectric material.

4. The waveguide grating coupler of claim 2 , wherein said DBR comprises alternating layers of dielectric material.

5. The waveguide grating coupler of claim 2 , wherein said grating coupler is disposed with respect to said optical element to couple light of a predetermined wavelength between said optical element and said planar guiding portion, said optical element being oriented at an angle with respect to said planar guiding portion and said multiple layers of said DBR having thicknesses to provide coherent reflection of said light having said wavelength and directed at said angle of incidence of the light.

6. The waveguide grating coupler of claim 1 , wherein said DBR comprises silicon.

7. The waveguide grating coupler of claim 6 , wherein said DBR comprises dielectric selected from the group consisting of silicon dioxide and silicon nitride.

8. The waveguide grating coupler of claim 1 , wherein said planar guiding portion and said DBR are formed over a substrate and said DBR is disposed between said planar guiding portion and said substrate such that light scattered outside said portion of said optical path and toward said substrate is reflected by said DBR toward said elongate scattering elements.

9. The waveguide grating coupler of claim 8 , wherein said DBR is formed on a layer of material formed over said substrate.

10. A waveguide grating coupler for coupling light between a waveguide and an optical element having a substantially Gaussian mode profile, said waveguide grating coupler comprising:

a planar guiding portion optically connected to said waveguide, said planar guiding portion having first and second ends and an optical power distribution therein that decreases between said first and second ends; and

a plurality of elongate scattering elements having respective scatter cross-sections arranged along at least a portion of said planar guiding portion to couple light having a substantially Gaussian intensity distribution between said planar guiding portion and said optical element, said elongate scattering elements having at least one characteristic which varies in magnitude among at least a group of said elongate scattering elements, said magnitude of said characteristic controlling at least in part said scatter cross-sections of said elongate scattering elements,

wherein said magnitude of said characteristic of said group of elongate scattering elements varies irregularly, said magnitude for said group of elongate scattering elements changing with position along said planar guiding portion at a rate that is discontinuous,

wherein (i) said plurality of elongate scattering elements have respective scatter cross-sections adapted to scatter light along at least a portion of a predetermined optical path and (ii) said planar guiding portion further comprises a pair of Distributed Bragg Reflectors (DBRs) positioned on opposite sides of said elongate scattering elements such that light scattered outside said portion of said optical path is reflected by said DBRs toward said elongate scattering elements.

11. The waveguide grating coupler of claim 10 , wherein said pair of DBRs are spaced apart from each other a distance to provide an optical cavity resonance for said scattered light.

12. The waveguide grating coupler of claim 10 , wherein said planar guiding portion and said pair of DBRs are formed over a substrate, one of said DBRs being disposed between said planar guiding portion and said substrate such that light scattered outside said portion of said optical path and toward said substrate is reflected by said one of said DBRs towards said elongate scattering elements.

Assignments (7)
CORRECTIVE ASSIGNMENT TO CORRECT THE THE ASSIGNOR'S NAME PREVIOUSLY RECORDED AT REEL: 058979 FRAME: 0027. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 24, 2022
From: LUXTERA LLC
To: CISCO TECHNOLOGY, INC.
Reel/Frame 059496/0803 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2022
From: CISCO SYSTEMS, INC.
To: CISCO TECHNOLOGY, INC.
Reel/Frame 058979/0027 →
RELEASE OF SECURITY INTEREST Recorded Dec 24, 2020
From: SILICON VALLEY BANK
To: LUXTERA, LLC
Reel/Frame 054855/0838 →
CHANGE OF NAME Recorded Feb 6, 2020
From: LUXTERA, INC.
To: LUXTERA LLC
Reel/Frame 052019/0811 →
SECURITY INTEREST Recorded Mar 29, 2017
From: LUXTERA, INC.
To: SILICON VALLEY BANK
Reel/Frame 042109/0140 →
SECURITY AGREEMENT Recorded Jun 17, 2009
From: LUXTERA, INC.
To: SILICON VALLEY BANK
Reel/Frame 022835/0340 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2005
From: GUNN III, LAWRENCE C.; PINGUET, THIERRY J.; RATTIER, MAXIME JEAN
To: LUXTERA, INC
Reel/Frame 017254/0354 →