IP Library Granted Patent US 12,336,439
Granted Patent B2
US 12,336,439 · App. 17/926,073 · Granted Jun 17, 2025

Quantum gate device

Inventors: Atsushi Noguchi (Koganei, JP); Alto Osada (Yokohama, JP); Yasunobu Nakamura (Tsukuba, JP)
Assignee: JAPAN SCIENCE AND TECHNOLOGY AGENCY
H10N69/00G06N10/20
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Quick Facts
Patent No.
US 12,336,439
App. No.
17/926,073
Granted
Jun 17, 2025
Kind
B2
Abstract

A quantum gate device includes a first superconducting circuit which includes at least one of Josephson devices in an annular circuit including a superconducting wire and resonates at a first resonance frequency, a second superconducting circuit which includes at least one of Josephson devices in an annular circuit including a superconducting wire and resonates at a second resonance frequency, a connection unit which includes a capacitor and a superconducting wire provided at each electrode of the capacitor and connects the first and second circuits, a magnetic field application means applying a magnetic field to one or both of the first and second circuits, a quantum gate control electromagnetic wave irradiation unit irradiating one of the first and second circuits with a control electromagnetic wave, and an unnecessary transition suppression electromagnetic wave irradiation unit irradiating one of the first and second circuits with an unnecessary interaction suppression electromagnetic wave.

Claims (18)

1. A quantum gate device comprising:

a) a first superconducting circuit including at least one Josephson device in an annular circuit including a superconducting wire, the first superconducting circuit being configured to resonate at a first resonance frequency;

b) a second superconducting circuit including at least one Josephson device in an annular circuit including a superconducting wire, the second superconducting circuit being configured to resonate at a second resonance frequency different from the first resonance frequency;

c) a connection unit including a capacitor and a superconducting wire provided at each of both electrodes of the capacitor, the connection unit being configured to connect the first superconducting circuit and the second superconducting circuit;

d) a magnetic field application means configured to apply a magnetic field to one or both of the first superconducting circuit and the second superconducting circuit;

e) a quantum gate control electromagnetic wave irradiation unit configured to irradiate one of the first superconducting circuit and the second superconducting circuit with a control electromagnetic wave which is an electromagnetic wave having a control frequency corresponding to an original energy difference between two energy states contributing to operation of a quantum gate among a plurality of quantized energy states formed by the first superconducting circuit and the second superconducting circuit; and

f) an unnecessary interaction suppression electromagnetic wave irradiation unit configured to irradiate one of the first superconducting circuit and the second superconducting circuit with an unnecessary interaction suppression electromagnetic wave which is an electromagnetic wave having an unnecessary interaction suppression frequency, the unnecessary interaction suppression frequency being a frequency between a first frequency and a second frequency, and differing by 10 MHz or more from a frequency corresponding to an original energy difference between arbitrarily selected two energy states among a plurality of the energy states, where the first frequency is a frequency corresponding to an original energy difference between a first energy state that is highest and a second energy state that is second highest in three energy states among a plurality of the energy states, and the second frequency is a frequency corresponding to an original energy difference between the second energy state and a third energy state having lowest energy.

2. The quantum gate device according to claim 1 , wherein

the unnecessary interaction suppression electromagnetic wave irradiation unit is configured to continue irradiation with the unnecessary interaction suppression electromagnetic wave from start of irradiation with the control electromagnetic wave by the quantum gate control electromagnetic wave irradiation unit to end of operation of a quantum gate.

3. The quantum gate device according to claim 1 , wherein

output of the unnecessary interaction suppression electromagnetic wave is adjusted so that magnitude of a difference between energy differences of two sets having a same original energy difference among sets of energy states including arbitrarily selected two energy states among the plurality of energy states falls within a range of −0.1 MHz to 0.1 MHz.

4. The quantum gate device according to claim 1 , wherein

the first superconducting circuit includes a partial superconducting circuit in which a first Josephson device and a second Josephson device group in which n second Josephson devices having Josephson energy higher than n times Josephson energy of the first Josephson device are connected in series by a wire made from a superconductor, in which the partial superconducting circuit and a capacitor are connected annularly by a wire made from a superconductor, and

the second superconducting circuit includes one Josephson device and a capacitor connected annularly by a wire made from a superconductor.

5. A quantum computer comprising the quantum gate device according to claim 1 .

6. A quantum computer comprising the quantum gate device according to claim 2 .

7. A quantum computer comprising the quantum gate device according to claim 3 .

8. A quantum computer comprising the quantum gate device according to claim 4 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2022
From: NOGUCHI, ATSUSHI; OSADA, ALTO; NAKAMURA, YASUNOBU
To: JAPAN SCIENCE AND TECHNOLOGY AGENCY
Reel/Frame 061816/0112 →
Priority Claims (1)
JP 2020-087283 · May 19, 2020 · national
Continuity (1)
Related Publication 20230189666A1 · Jun 15, 2023
References Cited (6)
US 20040077503A1 · Blais · 2004 [cited by examiner]
Noguchi et al., “Single-photon quantum regime of artificial radiation pressure on a surface acoustic wave resonator,” Aug. 8, 2018, <URL: https://arxiv.org/pdf/1808.03372.pdf>. [cited by applicant]
Noguchi, Atsushi, “Quantum gate with a radiation pressure interaction between superconducting qubits,” Center for Emergent Matter Science, Institute of Physical and Chemical Research, Apr. 23, 2019, <URL: https://www.ce… [cited by applicant]
Mundada et al., “Suppression of Qubit Crosstalk in a Tunable Coupling Superconducting Circuit,” Physical Review Applied, 2019, vol. 12, pp. 054023-1-054023-10. [cited by applicant]
Ware et al., “Cross-resonance interactions between superconducting qubits with variable detuning,” May 27, 2019, <URL: https://arxiv.org/pdf/1905.11480.pdf>. [cited by applicant]
Jun. 29, 2021 Written Opinion of the International Searching Authority issued in International Patent Application No. PCT/JP2021/014961. [cited by applicant]