IP Library › Granted Patent US 11,980,107
Granted Patent B2
US 11,980,107 · App. 17/053,401 · Granted May 7, 2024

Quantum computing system and method of using quantum computing system

Inventors: Jaw-Shen Tsai (Tokyo, JP); Hiroto Mukai (Tokyo, JP); Keiichi Sakata (Tokyo, JP)
Assignee: Tokyo University of Science Foundation
H10N69/00G06N10/00G06N10/20G06N10/40H01L23/528
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Quick Facts
Patent No.
US 11,980,107
App. No.
17/053,401
Granted
May 7, 2024
Kind
B2
Abstract

A quantum computing system including plural base configurations each configured including a first quantum bit group configured from first quantum bits arranged so as to form a single column without mutual coupling, a second quantum bit group configured from second quantum bits arranged so as to form a single column with adjacent ones of the second quantum bits coupled together and each of the second quantum bits coupled to the first quantum bit that is arranged in a same row, and a third quantum bit coupled to all of the second quantum bits. The plural base configurations are arranged so as to form a single column with the third quantum bits in adjacent ones of the base configurations coupled together. In a quantum computing circuit configuration, a two-dimensional cluster state or a three-dimensional cluster state is accordingly realized with two-dimensional control wiring, or surface code is accordingly realized with a pseudo two-dimensional superconducting circuit.

Claims (59)

1. A quantum computing system comprising:

a plurality of first base configurations, each including:

a first quantum bit group configured from first quantum bits arranged so as to form a single column with adjacent ones of the first quantum bits coupled together, and

a second quantum bit group configured from second quantum bits arranged so as to form a single column without mutual coupling and with each of the second quantum bits coupled to a first quantum bit that is arranged in a same row;

a plurality of second base configurations, each of which has a structure in which the first quantum bit group and the second quantum bit group are reversed so as to be symmetrical to one of the plurality of first base configurations, about an axis along an array direction of the first quantum bits and the second quantum bits in the first base configuration, wherein:

the first base configurations and the second base configurations are in an alternately staggered arrangement with the first base configurations and the second base configurations arranged so as to form respective single columns, with all adjacent base configurations of the first base configurations and the second base configurations in the alternately staggered arrangement coupled together at each row, by coupling between first quantum bits that are in a same row as each other in the first base configuration and the second base configuration, and with wiring for coupling the first quantum bits together configured so as to have three-dimensional intersections at intersecting portions with other wiring; and

control wiring for connecting each of the first quantum bits and each of the second quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring, and

wherein the first base configurations, the second base configurations, the wiring for coupling the first quantum bits together, and the control wiring are formed two-dimensionally.

2. A method of using the quantum computing system of claim 1 , wherein operations are performed on each of the first quantum bits and each of the second quantum bits according to a prescribed sequence in the quantum computing system usage method.

3. A quantum computing system comprising:

a first quantum bit group configured from first quantum bits arranged so as to form a single column without mutual coupling;

a second quantum bit group configured from second quantum bits arranged so as to form a single column with adjacent second quantum bits of the second quantum bits coupled together and each of the second quantum bits coupled to a first quantum bit that is arranged in a same row;

a third quantum bit group configured from third quantum bits arranged so as to form a single column without mutual coupling and with each of the third quantum bits coupled to a second quantum bit that is arranged in a same row; and

control wiring for connecting each of the first quantum bits, each of the second quantum bits, and each of the third quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring,

wherein the first quantum bit group, the second quantum bit group, the third quantum bit group, and the control wiring are formed two-dimensionally.

4. A method of using the quantum computing system of claim 3 , wherein operations are performed on each of the first quantum bits, each of the second quantum bits, and each of the third quantum bits according to a prescribed sequence in the quantum computing system usage method.

5. A quantum computing system comprising:

a first quantum bit group configured from first quantum bits arranged so as to form a single column without mutual coupling;

a second quantum bit group configured from second quantum bits arranged so as to form a single column with adjacent second quantum bits of the second quantum bits coupled together and each of the second quantum bits coupled to a first quantum bit that is arranged in a same row;

a third quantum bit coupled to all of the second quantum bits; and

control wiring for connecting each of the first quantum bits, each of the second quantum bits, and the third quantum bit to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring,

wherein the first quantum bit group, the second quantum bit group, the third quantum bit group, and the control wiring are formed two-dimensionally.

6. A method of using the quantum computing system of claim 5 , wherein operations are performed on each of the first quantum bits, each of the second quantum bits, and the third quantum bit according to a prescribed sequence in the quantum computing system usage method.

7. A quantum computing system comprising:

a first quantum bit group configured from first quantum bits arranged so as to form a single column with adjacent first quantum bits of the first quantum bits coupled together;

a second quantum bit group configured from second quantum bits arranged so as to form a single column without mutual coupling and with each of the second quantum bits coupled to a first quantum bit that is arranged in a same row; and

control wiring for connecting each of the first quantum bits and each of the second quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring,

wherein the first quantum bit group, the second quantum bit group, and the control wiring are formed two-dimensionally.

8. A method of using the quantum computing system of claim 7 , wherein operations are performed on each of the first quantum bits and each of the second quantum bits according to a prescribed sequence in the quantum computing system usage method.

9. A quantum computing system comprising:

a first quantum bit group configured from first quantum bits arranged so as to form a single column with adjacent first quantum bits of the first quantum bits coupled together;

a second quantum bit coupled to all of the first quantum bits; and

control wiring for connecting each of the first quantum bits and the second quantum bit to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring,

wherein the first quantum bit group, the second quantum bit group, and the control wiring are formed two-dimensionally.

10. A method of using the quantum computing system of claim 9 , wherein operations are performed on each of the first quantum bits and the second quantum bit according to a prescribed sequence in the quantum computing system usage method.

11. A quantum computing system comprising:

a plurality of base configurations each configured including:

a first quantum bit group configured from first quantum bits arranged so as to form a single column without mutual coupling,

a second quantum bit group configured from second quantum bits arranged so as to form a single column with adjacent second quantum bits of the second quantum bits coupled together and each of the second quantum bits coupled to a first quantum bit that is arranged in a same row, and

a third quantum bit coupled to all of the second quantum bits, wherein:

the plurality of base configurations are arranged so as to form a single column with third quantum bits in adjacent base configurations of the base configurations coupled together;

control wiring for connecting each of the first quantum bits, each of the second quantum bits, and each of the third quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring, and

the plurality of base configurations and the control wiring are formed two-dimensionally.

12. A method of using the quantum computing system of claim 11 , wherein operations are performed on each of the first quantum bits, each of the second quantum bits, and each of the third quantum bits according to a prescribed sequence in the quantum computing system usage method.

13. A quantum computing system comprising:

a plurality of base configurations each configured including

a first quantum bit group configured from first quantum bits arranged so as to form a single column with adjacent first quantum bits of the first quantum bits coupled together, and

a second quantum bit coupled to all of the first quantum bits, wherein:

the plurality of base configurations are arranged so as to form a single column with second quantum bits in adjacent base configurations of the base configurations coupled together;

control wiring for connecting each of the first quantum bits and each of the second quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring, and

the plurality of base configurations and the control wiring are formed two-dimensionally.

14. A method of using the quantum computing system of claim 13 , wherein operations are performed on each of the first quantum bits and each of the second quantum bits according to a prescribed sequence in the quantum computing system usage method.

15. A quantum computing system comprising:

a plurality of first base configurations each configured including a first quantum bit group configured from first quantum bits arranged so as to form a single column with adjacent first quantum bits of the first quantum bits coupled together;

a plurality of second base configurations each configured including a second quantum bit group configured from second quantum bits arranged so as to form a single column with adjacent second quantum bits of the second quantum bits coupled together, wherein:

the plurality of first base configurations are arranged so as to form a single column, and the plurality of second base configurations are arranged so as to form a single column different from the column of the plurality of first base configurations;

for each pair of a first base configuration and a second base configuration to be coupled, wiring for coupling together corresponding quantum bits of the first quantum bits and the second quantum bits in each of the pairs is configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other wiring or is configured so as to have three-dimensional intersections at intersecting portions with other wiring;

control wiring for connecting each of the first quantum bits and each of the second quantum bits to a control device, with control wiring configured as two-dimensional wiring formed two-dimensionally so as not to intersect with other control wiring or configured so as to have three-dimensional intersections at intersecting portions with other control wiring, and

the plurality of first base configurations, the plurality of second base configurations, the wiring for coupling together corresponding quantum bits, and the control wiring are formed two-dimensionally.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2020
From: TSAI, JAW-SHEN; MUKAI, HIROTO; SAKATA, KEIICHI
To: TOKYO UNIVERSITY OF SCIENCE FOUNDATION
Reel/Frame 055266/0201 →
Priority Claims (3)
JP 2018-090547 · May 9, 2018 · national
JP 2018-131507 · Jul 11, 2018 · national
JP 2018-148870 · Aug 7, 2018 · national
Continuity (1)
Related Publication 20210233957A1 · Jul 29, 2021