IP Library › Granted Patent US 11,651,267
Granted Patent B2
US 11,651,267 · App. 17/707,541 · Granted May 16, 2023

Quantum network node and protocols with multiple qubit species

Inventors: Christopher Monroe (Ellicott City, MD); Martin Lichtman (Philadelphia, PA); Ismail Volkan Inlek (Cary, NC); Clayton Crocker (Hyattsville, MD); Ksenia Sosnova (Silver Spring, MD)
G06N10/00B82Y10/00G06F9/3877G06F9/5027H01J49/422H04B10/70H04L9/0858
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Quick Facts
Patent No.
US 11,651,267
App. No.
17/707,541
Granted
May 16, 2023
Kind
B2
Abstract

The disclosure describes aspects of using multiple species in trapped-ion nodes for quantum networking. In an aspect, a quantum networking node is described that includes multiple memory qubits, each memory qubit being based on a 171 Yb + atomic ion, and one or more communication qubits, each communication qubit being based on a 138 Ba + atomic ion. The memory and communication qubits are part of a lattice in an atomic ion trap. In another aspect, a quantum computing system having a modular optical architecture is described that includes multiple quantum networking nodes, each quantum networking node including multiple memory qubits (e.g., based on a 171 Yb + atomic ion) and one or more communication qubits (e.g., based on a 138 Ba + atomic ion). The memory and communication qubits are part of a lattice in an atomic ion trap. The system further includes a photonic entangler coupled to each of the multiple quantum networking nodes.

Claims (57)

1. A quantum computing system having a modular optical architecture, comprising:

one or more first quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the first quantum networking nodes comprising different isotopes of a same species;

one or more second quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the second quantum networking nodes comprising different species; and

a photonic entangler optically coupled to each of the one or more first quantum networking nodes and each of the one or more second quantum networking nodes, the photonic entangler including one or more optical switches that are reconfigurable to provide a connection between any two quantum networking nodes from the one or more first quantum networking nodes and the one or more second quantum networking nodes.

2. The quantum computing system of claim 1 , wherein the connection between the two quantum networking nodes is a connection between any of the one or more communication qubits of one of the two quantum networking nodes and any of the one or more communication qubits of the other one of the two quantum networking nodes.

3. The quantum computing system of claim 1 , wherein the connection between the two quantum networking nodes is via one or more optical fibers.

4. The quantum computing system of claim 3 , wherein the one or more optical fibers are configured to operate at an optical communications spectrum.

5. The quantum computing system of claim 4 , wherein:

the connection between the two quantum networking nodes is a connection between a first communication qubit of one of the two quantum networking nodes and a second communication qubit of the other one of the two quantum networking nodes, and

the quantum computing system further comprising a wavelength converter configured to convert a spectrum of a photon emitted by the first communication qubit to the optical communications spectrum of the one or more optical fibers.

6. The quantum computing system of claim 5 , wherein the spectrum of the photon emitted by the first communication qubit is a visible spectrum and the optical communications spectrum includes wavelengths of approximately 1300-1550 nm.

7. The quantum computing system of claim 1 , wherein:

the multiple memory qubits and the one or more communication qubits in each of the first quantum networking nodes are part of a lattice in an ion trap, and the one or more quantum communication qubits in each of the first quantum networking nodes are positioned at any end of the lattice, and

the multiple memory qubits and the one or more communication qubits in each of the second quantum networking nodes are part of a lattice in an ion trap, and the one or more quantum communication qubits in each of the second quantum networking nodes are positioned at any end of the lattice.

8. A quantum computing system having a modular optical architecture, comprising:

one or more first quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the first quantum networking nodes comprise a first set of different species;

one or more second quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the second quantum networking nodes comprise a second set of different species that are different from the first set of different species; and

a photonic entangler optically coupled to each of the one or more first quantum networking nodes and each of the one or more second quantum networking nodes, the photonic entangler including one or more optical switches that are reconfigurable to provide a connection between any two quantum networking nodes from the one or more first quantum networking nodes and the one or more second quantum networking nodes.

9. The quantum computing system of claim 8 , wherein the connection between the two quantum networking nodes is a connection between any of the one or more communication qubits of one of the two quantum networking nodes and any of the one or more communication qubits of the other one of the two quantum networking nodes.

10. The quantum computing system of claim 8 , wherein the connection between the two quantum networking nodes is via one or more optical fibers.

11. The quantum computing system of claim 10 , wherein the one or more optical fibers are configured to operate at an optical communications spectrum.

12. The quantum computing system of claim 11 , wherein:

the connection between the two quantum networking nodes is a connection between a first communication qubit of one of the two quantum networking nodes and a second communication qubit of the other one of the two quantum networking nodes, and

the quantum computing system further comprising a wavelength converter configured to convert a spectrum of a photon emitted by the first communication qubit to the optical communications spectrum of the one or more optical fibers.

13. The quantum computing system of claim 12 , wherein the spectrum of the photon emitted by the first communication qubit is a visible spectrum and the optical communications spectrum includes wavelengths of approximately 1300-1550 nm.

14. The quantum computing system of claim 8 , wherein:

the multiple memory qubits and the one or more communication qubits in each of the first quantum networking nodes are part of a lattice in an ion trap, and the one or more quantum communication qubits in each of the first quantum networking nodes are positioned at any end of the lattice, and

the multiple memory qubits and the one or more communication qubits in each of the second quantum networking nodes are part of a lattice in an ion trap, and the one or more quantum communication qubits in each of the second quantum networking nodes are positioned at any end of the lattice.

15. A quantum computing system having a modular optical architecture, comprising:

one or more first quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the first quantum networking nodes comprising different isotopes of a same first species;

one or more second quantum networking nodes that each include:

multiple memory qubits, and

one or more communication qubits,

the multiple memory qubits and the one or more communication qubits in each of the second quantum networking nodes comprising different isotopes of a same second species; and

a photonic entangler optically coupled to each of the one or more first quantum networking nodes and each of the one or more second quantum networking nodes, the photonic entangler includes one or more optical switches that are reconfigurable to provide a connection between any two quantum networking nodes from the one or more first quantum networking nodes and the one or more second quantum networking nodes.

16. The quantum computing system of claim 15 , wherein the connection between the two quantum networking nodes is a connection between any of the one or more communication qubits of one of the two quantum networking nodes and any of the one or more communication qubits of the other one of the two quantum networking nodes.

17. The quantum computing system of claim 15 , wherein the connection between the two quantum networking nodes is via one or more optical fibers.

18. The quantum computing system of claim 17 , wherein the one or more optical fibers are configured to operate at an optical communications spectrum.

19. The quantum computing system of claim 18 , wherein:

the connection between any two quantum networking nodes is a connection between a first communication qubit of one of the two quantum networking nodes and a second communication qubit of the other one of the two quantum networking nodes, and

the quantum computing system further comprising a wavelength converter configured to convert a spectrum of a photon emitted by the first communication qubit to the optical communications spectrum of the one or more optical fibers.

20. The quantum computing system of claim 19 , wherein the spectrum of the photon emitted by the first communication qubit is a visible spectrum and the optical communications spectrum includes wavelengths of approximately 1300-1550 nm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2022
From: MONROE, CHRISTOPHER; LICHTMAN, MARTIN; INLEK, ISMAIL VOLKAN; CROCKER, CLAYTON; SOSNOVA, KSENIA
To: UNIVERSITY OF MARYLAND, COLLEGE PARK
Reel/Frame 059562/0814 →
Continuity (5)
Continuation 17145116 · Jan 8, 2021
Continuation 16182219 · Nov 6, 2018
Provisional Application 62694604 · Jul 6, 2018
Provisional Application 62582529 · Nov 7, 2017
Related Publication 20220222560A1 · Jul 14, 2022