IP Library › Granted Patent US 10,261,250
Granted Patent B2
US 10,261,250 · App. 15/319,182 · Granted Apr 16, 2019

Efficient spin-photon interface using glide-plane-symmetric waveguide

Inventors: Sahand Mahmoodian (Copenhagen, DK); Immo Nathanael Söllner (København Ø, DK); Søren Stobbe (København V, DK); Peter Lodahl (Birkerød, DK)
Assignee: UNIVERSITY OF COPENHAGEN
G02B6/1225B82Y20/00G02B1/005G02B6/1223G02B2006/12078G02F2202/32
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Quick Facts
Patent No.
US 10,261,250
App. No.
15/319,182
Granted
Apr 16, 2019
Kind
B2
Abstract

An optical device comprising a planar waveguide and a quantum emitter is presented. The planar waveguide comprises a longitudinal extending guiding region with a first side and a second side. A first nanostructure is arranged on the first side of the guiding region, and a second nanostructure is arranged on the second side of the guiding region. The planar waveguide includes a first longitudinal region where the first nanostructure and the second nanostructure are arranged substantially glide-plane symmetric about the guiding region of the planar waveguide, and the quantum emitter is coupled to the first longitudinal region of the planar waveguide.

Claims (36)

1. An optical device comprising a planar waveguide and a quantum emitter, wherein

the planar waveguide comprises:

a longitudinal extending guiding region with a first side and a second side,

a first nanostructure arranged on the first side of the guiding region, and

a second nanostructure arranged on the second side of the guiding region, wherein

the planar waveguide includes a first longitudinal region where the first nanostructure and the second nanostructure are arranged substantially glide-plane symmetric about the guiding region of the planar waveguide,

and wherein the quantum emitter is coupled to the first longitudinal region of the planar waveguide, wherein

the quantum emitter includes optical transitions that are circularly polarised and is embedded in the guiding region of the planar waveguide such that the quantum emitter is a single-photon emitter, which emits photons in a circular polarised mode, and wherein

the first longitudinal region of the planar waveguide is configured to support modes, where electric fields have a circular polarisation within the plane of the planar waveguide at the position of the quantum emitter, such that the photons from the single photon emitter is effectively coupled to the planar waveguide.

2. The optical device according to claim 1 , wherein the single-photon emitter is a quantum dot.

3. The optical device according to claim 1 , wherein the planar waveguide is a photonic-crystal waveguide.

4. The optical device according to claim 1 , wherein the planar waveguide comprises a second longitudinal region, where the first nanostructure and the second nanostructure are arranged substantially mirror symmetric about the guiding region of the planar waveguide.

5. The optical device according to claim 4 , wherein the planar waveguide comprises a transition region, arranged between the first longitudinal region and the second longitudinal region, and wherein the geometry of the first and the second nanostructure gradually changes from glide-plane symmetry to mirror symmetry.

6. The optical device according to claim 4 , wherein a waveguide selected from the group consisting of ridge waveguide and strip waveguide is coupled to the second longitudinal region or the transition region.

7. The optical device according to claim 4 , wherein the planar waveguide comprises a third longitudinal region on an opposite longitudinal side of the first longitudinal region, where the first nanostructure and the second nanostructure are arranged mirror symmetric about the guiding region of the planar waveguide.

8. The optical device according to claim 7 , wherein the planar waveguide further comprises a second transition region arranged between the first longitudinal region and the third longitudinal region, wherein the geometry of the first and the second nanostructure gradually changes from a glide-plane symmetry to a mirror symmetry.

9. The optical device according to claim 1 , wherein the planar waveguide is made from a dielectric material.

10. The optical device according to claim 1 , wherein the first nanostructure and the second nanostructure are arranged in a first lattice structure and a second lattice structure, respectively, arranged in a triangular lattice and having a lattice constant a.

11. The optical device according to claim 10 , wherein the lattice constant a lies in the interval 100-500 nm.

12. The optical device according to claim 11 , wherein the wherein the lattice constant a lies in the interval 150-400 nm.

13. The optical device according to claim 11 , wherein the wherein the lattice constant a lies in the interval 200-300 nm.

14. The optical device according to claim 10 , wherein the planar waveguide has a thickness of between 0.2a and 1a.

15. The optical device according to claim 10 , wherein the planar waveguide has a thickness of between 0.4a and 0.8a.

16. A single-photon transistor comprising the optical device according to claim 1 .

17. A controlled NOT gate comprising the optical device according to claim 1 .

18. The optical device according to claim 1 , wherein the first nanostructure and the second nanostructure are mutually shifted in a longitudinal direction by 25%-75% of the period in the first longitudinal region of the planar waveguide.

19. An optical device comprising a planar waveguide and a quantum emitter, wherein

the planar waveguide comprises:

a longitudinal extending guiding region with a first side and a second side,

a first nanostructure arranged on the first side of the guiding region, and

a second nanostructure arranged on the second side of the guiding region, wherein

the planar waveguide includes a first longitudinal region where the first nanostructure and the second nanostructure are arranged glide-plane symmetric about the guiding region of the planar waveguide,

and wherein the quantum emitter is coupled to the first longitudinal region of the planar waveguide, wherein

the quantum emitter includes optical transitions that are circularly polarised and is embedded in the guiding region of the planar waveguide such that the quantum emitter is a single-photon emitter, which emits photons in a circular polarised mode, and wherein

the first longitudinal region of the planar waveguide is configured to support modes, where electric fields have a circular polarisation within the plane of the planar waveguide at the position of the quantum emitter, such that the photons from the single photon emitter are effectively coupled to the planar waveguide.

20. The optical device according to claim 19 , wherein the planar waveguide comprises a second longitudinal region, where the first nanostructure and the second nanostructure are arranged mirror symmetric about the guiding region of the planar waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2017
From: MAHOODIAN, SAHAND; SÖLLNER, IMMO NATHANAEL; STOBBE, SØREN; LODAHL, PETER
To: UNIVERSITY OF COPENHAGEN
Reel/Frame 043088/0955 →
Priority Claims (1)
EP 14172566 · Jun 16, 2014 · regional
Continuity (1)
Related Publication 20180210149A1 · Jul 26, 2018