IP Library Granted Patent US 11,573,370
Granted Patent B2
US 11,573,370 · App. 16/970,704 · Granted Feb 7, 2023

Systems and methods for quantum communication using optical fiber links having a scattering region

Inventors: Ming-Jun Li (Horseheads, NY); Daniel Aloysius Nolan (Corning, NY)
Assignee: Corning Incorporated
G02B6/03694G02B6/421G02B6/43G02F1/3526G02F1/39H04B10/25H04B10/70
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Quick Facts
Patent No.
US 11,573,370
App. No.
16/970,704
Granted
Feb 7, 2023
Kind
B2
Abstract

A quantum communication system that includes a multiphoton entanglement generator, a plurality of photon detector units, and a plurality of optical fiber links. The plurality of photon detector units include a first photon detector unit and a second photon detector unit. The multiphoton entanglement generator is structurally configured to output more than two entangled photons. The plurality of optical fiber links comprise a first optical fiber link optically coupled to the multiphoton entanglement generator and disposed between the multiphoton entanglement generator and the first photon detector unit. The plurality of optical fiber links comprise a second optical fiber link optically coupled to the multiphoton entanglement generator and disposed between the multiphoton entanglement generator and the second photon detector unit. Further, at least one of the plurality of optical fiber links has a core, a cladding, and a scattering region having a plurality of scattering structures.

Claims (89)

1. A quantum communication system comprising a multiphoton entanglement generator, a plurality of photon detector units, and a plurality of optical fiber links, wherein

the plurality of photon detector units comprise a first photon detector unit and a second photon detector unit;

the multiphoton entanglement generator is structurally configured to output more than two entangled photons;

the plurality of optical fiber links comprise a first optical fiber link optically coupled to the multiphoton entanglement generator and disposed between the multiphoton entanglement generator and the first photon detector unit;

the plurality of optical fiber links comprise a second optical fiber link optically coupled to the multiphoton entanglement generator and disposed between the multiphoton entanglement generator and the second photon detector unit; and

at least one of the plurality of optical fiber links comprises a core, a cladding, and a scattering region comprising a plurality of scattering structures, wherein the scattering region is disposed radially exterior to the cladding, and wherein the scattering region is disposed radially interior to a coating layer operable to absorb a disentangled attenuated photon.

2. The quantum communication system of claim 1 , wherein the scattering region is spaced radially apart from a core-cladding interface.

3. The quantum communication system of claim 2 , wherein a radial spacing distance between the scattering region and the core-cladding interface is about 10 μm or greater.

4. The quantum communication system of claim 2 , wherein the scattering region is disposed in the cladding.

5. The quantum communication system according to claim 1 , wherein the plurality of scattering structures comprise silica, alumina, zirconia, titania, cerium oxide, tin oxide, zinc peroxide, antimony oxide, or a combination thereof.

6. The quantum communication system of claim 1 , wherein the plurality of scattering structures comprise gas filled voids.

7. The quantum communication system of claim 6 , wherein the gas filled voids comprise SO2, Kr, Ar, CO2, N2, 02, or a combination thereof.

8. The quantum communication system according to claim 1 , wherein a cross-sectional size of each of the plurality of scattering structures is from about 20 nm to about 5000 nm.

9. The quantum communication system according to claim 1 , wherein a fill fraction of the scattering region is from about 0.5% to about 20%.

10. The quantum communication system according to claim 1 , wherein the multiphoton entanglement generator is structurally configured to simultaneously output more than two entangled photons.

11. The quantum communication system according to claim 1 , wherein the multiphoton entanglement generator is structurally configured to output two or more pairs of entangled photons.

12. The quantum communication system of claim 11 , wherein the multiphoton entanglement generator is optically coupled to the first optical fiber link and the second optical fiber link such that the multiphoton entanglement generator outputs a first pair of entangled photons into the first optical fiber link and a second pair of entangled photons into the second optical fiber link.

13. The quantum communication system according to claim 1 , wherein the multiphoton entanglement generator comprises two or more parametric down conversion generators.

14. The quantum communication system of claim 13 , wherein:

the multiphoton entanglement generator further comprises entanglement optics, a pathway splitter, and an entanglement detector; and

the entanglement optics comprise a first entangling pathway optically coupled to and extending between a first parametric down conversion generator and the entanglement detector and a second entangling pathway optically coupled to and extending between a second parametric down conversion generator and the pathway splitter.

15. The quantum communication system of claim 14 , wherein the entanglement optics further comprise a beamsplitter positioned such that each entangling pathway traverses the beamsplitter; and

the entanglement optics are structurally configured to entangle each entangled pair of photons when each entangled pair of photons output by the parametric down conversion generators simultaneously traverse the beamsplitter.

16. The quantum communication system of claim 14 , wherein the pathway splitter is structurally configured to direct two or more entangled photons into the first optical fiber link and direct two or more entangled photons into the second optical fiber link.

17. The quantum communication system of claim 13 , wherein each parametric down conversion generator comprises a laser source and a non-linear crystal.

18. The quantum communication system according to claim 1 , wherein at least one of the plurality of photon detector units comprise one or more single-photon detectors.

19. The quantum communication system of claim 18 , wherein the single-photon detector comprises a superconducting nanowire single-photon detector, a carbon nanowire detector, or a low noise photodiode.

20. A quantum communication system comprising:

a first photon detector unit and a second detector unit; and

two photon entanglement chains each extending between the first photon detector unit and the second photon detector unit and each comprising:

a first end and a second end;

a first terminating quantum memory positioned at the first end and a second terminating quantum memory positioned at the second end;

an originating multiphoton entanglement generator, a first intermediate multiphoton entanglement generator and a second intermediate multiphoton entanglement generator;

a first intermediate quantum repeater disposed between the first intermediate multiphoton entanglement generator and the originating multiphoton entanglement generator;

a second intermediate quantum repeater disposed between the second intermediate multiphoton entanglement generator and the originating multiphoton entanglement generator;

a first optical fiber link disposed between and optically coupled to the first intermediate quantum repeater and the first intermediate multiphoton entanglement generator;

a second optical fiber link disposed between and optically coupled to the first intermediate quantum repeater and the originating multi photon entanglement generator;

a third optical fiber link disposed between and optically coupled the second intermediate quantum repeater and the second intermediate multiphoton entanglement generator

a fourth optical fiber link disposed between and optically coupled to the second intermediate quantum repeater and the originating multiphoton entanglement generator;

a fifth optical fiber link is optically coupled to the first intermediate multiphoton entanglement generator and is disposed between the first intermediate multiphoton entanglement generator and the first end of the photon entanglement chain; and

a sixth optical fiber link is optically coupled to the second intermediate multiphoton entanglement generator and is disposed between the second intermediate multiphoton entanglement generator and the second end of the photon entanglement chain; wherein

at least one of the first optical fiber link, the second optical fiber link, the third optical fiber link, the fourth optical fiber link, the fifth optical fiber link, and the sixth optical fiber link comprises a core, a cladding, and a scattering region comprising a plurality of scattering structures and spaced radially exterior and apart from the core-cladding interface, and wherein the scattering region is disposed in a coating layer surrounding the cladding and the core, the coating layer operable to absorb a disentangled attenuated photon.

21. The quantum communication system of claim 20 , wherein:

the first optical fiber link, the second optical fiber link, the third optical fiber link, and

the fourth optical fiber link each comprise a core length L;

the fifth optical fiber link and the sixth optical fiber link each comprise a core length

L′; and

L′>L.

22. The quantum communication system of claim 20 , wherein:

the originating multiphoton entanglement generator, the first intermediate multiphoton entanglement generator, and the second intermediate multiphoton entanglement generator are each structurally configured to generate more than two entangled photons; and

the first and second intermediate quantum repeaters of each photon entanglement chain are structurally configured to (i) receive an individual entangled photon generated by one of the originating multiphoton entanglement generators, (ii) receive an individual entangled photon generated by the first and second intermediate multiphoton entanglement generators of one of the photon entanglement chains, respectively, and (iii) entangle the received photons.

23. The quantum communication system of claim 20 , wherein:

the first and second intermediate quantum repeaters of each photon entanglement chain comprise two or more quantum memories and entanglement optics; and

the entanglement optics comprise two or more entangling pathways optically coupled to and extending between the two or more quantum memories and two entanglement detectors.

24. The quantum communication system of claim 20 , wherein:

the entanglement optics further comprise a beamsplitter positioned such that each

entangling pathway traverses the beamsplitter; and

the entanglement optics are structurally configured to entangle pairs of particles when

particles output by the quantum memories simultaneously traverse the beamsplitter.

25. A quantum communication system comprising:

a first photon detector unit and a second detector unit; and

two photon entanglement chains each extending between the first photon detector unit

and the second photon detector unit and each comprising:

a first end and a second end;

a first terminating quantum memory positioned at the first end and a second

terminating quantum memory positioned at the second end;

an originating quantum repeater, a first intermediate multiphoton entanglement generator disposed between the originating quantum repeater and the first terminating quantum memory, and a second intermediate multiphoton entanglement generator disposed between the originating quantum repeater and the second terminating quantum memory;

a first optical fiber link disposed between and optically coupled to the originating quantum repeater and the first intermediate multiphoton entanglement generator;

a second optical fiber link disposed between and optically coupled to the originating quantum repeater and the second intermediate multiphoton entanglement generator;

a third optical fiber link optically coupled to the first intermediate multiphoton entanglement generator and disposed between the first intermediate multiphoton entanglement generator and the first end of the photon entanglement chain;

a fourth optical fiber link optically coupled to the second intermediate multiphoton entanglement generator and disposed between the second intermediate multiphoton entanglement generator and the second end of the photon entanglement chain; and

at least one of the first optical fiber link, the second optical fiber link, the third optical fiber link, and the fourth optical fiber link comprises a core, a cladding, and a scattering region comprising a plurality of scattering structures and disposed radially exterior from the core-cladding interface in a coating layer surrounding the cladding and the core, the coating layer operable to absorb a disentangled attenuated photon.

26. The quantum communication system of claim 25 , wherein: the first optical fiber link, the second optical fiber link each comprise a core length L;

the third optical fiber link and the fourth optical fiber link each comprise a core length

L′; and

L′>L.

27. The quantum communication system of claim 25 , wherein:

the first intermediate multiphoton entanglement generators and the second intermediate multiphoton entanglement generators are each structurally configured to generate an entangled pair of photons; and

the originating quantum repeater of each photon entanglement chain are structurally configured to (i) receive an individual entangled photon generated by the first intermediate multiphoton entanglement generator, (ii) receive an individual entangled photon generated by the second intermediate multiphoton entanglement generator, and (iii) entangle the received photons.

28. The quantum communication system of claim 25 , wherein:

the multiphoton entanglement generator comprises a quantum repeater comprising

two quantum memories and entanglement optics; and

the entanglement optics comprise two or more entangling pathways optically coupled

to and extending between the two quantum memories and two entanglement detectors.

29. The quantum communication system of claim 25 , wherein:

the entanglement optics further comprise a beamsplitter positioned such that each

entangling pathway traverses the beamsplitter; and

the entanglement optics are structurally configured to entangle pairs of particles when

particles output by the quantum memories simultaneously traverse the beamsplitter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2020
From: LI, MING-JUN; NOLAN, DANIEL ALOYSIUS
To: CORNING INCORPORATED
Reel/Frame 054631/0653 →
Continuity (2)
Provisional Application 62632137 · Feb 19, 2018
Related Publication 20200379171A1 · Dec 3, 2020