IP Library › Granted Patent US 12,731,057
Granted Patent B2
US 12,731,057 · App. 17/139,715 · Granted Sep 8, 2026

Quantum computing circuit comprising a plurality of chips and method for manufacturing the same

Inventors: Juha Hassel (Espoo, FI); Wei Liu (Espoo, FI); Vasilii Sevriuk (Espoo, FI); Johannes Heinsoo (Espoo, FI); Mate Jenei (Espoo, FI); Manjunath Venkatesh (Espoo, FI); Tianyi Li (Espoo, FI); Kok Wai Chan (Espoo, FI); Kuan Yen Tan (Espoo, FI); Mikko Möttönen (Espoo, FI)
Assignee: IQM Finland Oy
G06N10/20G06N10/40H10N69/00H10W72/29H10W90/722
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,731,057
App. No.
17/139,715
Granted
Sep 8, 2026
Kind
B2
Abstract

A quantum computing circuit is disclosed herein. An example quantum computing circuit includes a first chip with at least one qubit thereon. The quantum computing circuit also includes a second chip with at least other quantum circuit elements other than qubits thereon. The first chip and the second chip are stacked together in a flip-chip configuration and attached to each other with bump bonding that includes bonding bumps.

Claims (31)

1 . A quantum computing circuit comprising:

a first chip including at least one qubit;

a second chip including (i) a quantum circuit refrigerator comprising a superconductor-insulator-normal metal-insulator-superconductor (SINIS) junction and (ii) at least other quantum circuit elements other than qubits; and

a controllable connection between the quantum circuit refrigerator and at least one qubit on the first chip, wherein the controllable connection enables the quantum circuit refrigerator to be controllably used to reset a state of the at least one qubit;

wherein the first chip and the second chip are stacked together in a flip-chip configuration and attached to each other via bump bonding that includes bonding bumps.

2 . The quantum computing circuit according to claim 1 , wherein:

the first chip is made of a first set of constituent materials,

the second chip is made of a second set of constituent materials, and

the first and second sets consist of at least partly different constituent materials.

3 . The quantum computing circuit according to claim 2 , wherein the second set of constituent materials includes at least one material that is not present in the first set of constituent materials and is one of aluminum oxide, copper, palladium, or another non-superconductive metal.

4 . The quantum computing circuit according to claim 1 , wherein:

the first chip is manufactured in a first manufacturing process that includes a first sequence of manufacturing steps,

the second chip is manufactured in a second manufacturing process that includes a second sequence of manufacturing steps, and

the first and second sequences are at least partly different sequences of manufacturing steps.

5 . The quantum computing circuit according to claim 1 , wherein at least some of the bonding bumps are galvanically conductive and constitute galvanically conductive contacts between the first and second chips.

6 . The quantum computing circuit according to claim 1 , wherein one of the first and second chips is a larger chip and the other of the first and second chips is a smaller chip that covers only a part of the larger chip in the flip-chip configuration.

7 . The quantum computing circuit according to claim 6 , wherein:

the larger chip includes at least a first contact pad on a part of its surface facing the smaller chip that is not covered by the smaller chip,

the larger chip includes a first connection connecting the first contact pad and a first galvanically conductive bonding bump, and

the smaller chip includes a second connection connecting the first galvanically conductive bonding bump and a first quantum circuit element on the smaller chip.

8 . The quantum computing circuit according to claim 7 , wherein the first contact pad constitutes a signal connection to the first quantum circuit element.

9 . The quantum computing circuit according to claim 6 , wherein

the smaller chip includes a second contact pad on a surface that faces away from the larger chip, and

the smaller chip includes a third connection through a first conductive via, the third connection connecting the second contact pad to a second quantum circuit element on the surface of the smaller chip facing the larger chip.

10 . The quantum computing circuit according to claim 9 , wherein the larger chip includes a second conductive via connecting a third quantum circuit element on the surface of the larger chip facing the smaller chip that is covered by the smaller chip to a fourth connection that is at least partly located on an opposing surface of the larger chip that faces away from the smaller chip.

11 . The quantum computing circuit according to claim 1 , further comprising a non-galvanic connection for conveying signals between the first and second chips,

wherein the non-galvanic connection includes matching non-galvanic connector structures on surfaces of the first and second chips that face each other.

12 . The quantum computing circuit according to claim 11 , wherein the matching non-galvanic connector structures include mutually aligned conductive areas on the surfaces of the first and second chips facing each other for making a capacitive connection.

13 . The quantum computing circuit according to claim 11 , wherein the matching non-galvanic connector structures include mutually aligned inductive elements for making a magnetic connection.

14 . The quantum computing circuit according to claim 1 , wherein the second chip includes at least one filter that comprises at least one of: a non-superconductive metal, or a lossy dielectric.

15 . The quantum computing circuit according to claim 1 , wherein a separating distance between the first and second chips is between 1 and 100 micrometers.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2021
From: HASSEL, JUHA; LIU, WEI; SEVRIUK, VASILII; HEINSOO, JOHANNES; JENEI, MATE; VENKATESH, MANJUNATH; LI, TIANYI; CHAN, KOK WAI; TAN, KUAN YEN; MÖTTÖNEN, MIKKO
To: IQM FINLAND OY
Reel/Frame 055412/0837 →
Priority Claims (1)
EP 20185005 · Jul 9, 2020 · regional
Continuity (1)
Related Publication 20220012617A1 · Jan 13, 2022
References Cited (20)
US 20190229094A1 · White · 2019 [cited by examiner]
CN 109781947A · 2019 [cited by applicant]
CN 109891591A · 2019 [cited by applicant]
CN 110402446A · 2019 [cited by applicant]
CN 213545321U · 2021 [cited by applicant]
EP 3576142 · 2019 [cited by applicant]
WO 2018169585 · 2018 [cited by applicant]
WO 2019059879 · 2019 [cited by applicant]
WO WO2019236734A1 · 2019 [cited by examiner]
WO 2020027779 · 2020 [cited by applicant]
WO WO2020231378A1 · 2020 [cited by examiner]
Mykkanen et al.; “Thermionic junction devices utilizing phonon blocking”; Applied Sciences and Engineering, Research Article; Apr. 10, 2020; 9 pages. [cited by applicant]
Written Opinion issued to related PCT Application PCT/FI2021/050516, dated Sep. 2, 2022, 8 pages. [cited by applicant]
Office Action issued in CN App. No. 202011138243.3 mailed Sep. 27, 2024 (with English-language translation), 15 pages. [cited by applicant]
Binhui, Pan et al. “Expansibility and Tendency of the Quantum Computer,” Science and Technology Plaza, No. 11., Nov. 30, 2010 (with English-language Abstract), 5 pages. [cited by applicant]
Das Rabindra et al: “Cryogenic Qubit Integration for Quantum Computing”,2018 IEEE 68th Electronic Components and Technology Conference (ECTC), IEEE, May 29, 2018 (May 29, 2018), pp. 504-514, XP033380041, DOI: 10.1109/EC… [cited by applicant]
Satzinger K J et al: “Simple non-galvanic flip-chip integration method for hybrid quantum systems”, Applied Physics Letters, a IP Publishing LLC, US, vol. 114, No. 17, Apr. 29, 2019 (Apr. 29, 2019), XP012237442, ISSN: 0… [cited by applicant]
Kuan Yen Tan et al: “Quantum Circuit Refrigerator”, arxiv.org, Cornell University Library, 201 Olin Library Cornell University Ithaca, NY 14853, Jun. 15, 2016 (Jun. 15, 2016), XP081362891, DOI: 10.1038/NCOMMS15189. [cited by applicant]
International Search Report issued to PCT/FI2021/050516, dated Sep. 30, 2021, 7 pages. [cited by applicant]
Rosenberg et al, “Solid-State Qubits: 3D Integration and Packaging”; IEEE Microwave Magazine IEEE, Jul. 8, 2020, vol. 21, No. 8, XP011797742, <DOI:10.1109/MMM.2020.2993478>; 14 pages. [cited by applicant]