IP Library › Granted Patent US 12,711,413
Granted Patent B2
US 12,711,413 · App. 18/176,394 · Granted Aug 18, 2026

Parametric amplifiers with inductive input coupling for quantum computing systems

Inventor: Ofer Naaman (Santa Barbara, CA)
Assignee: GOOGLE LLC
G06N10/40H03F7/00H03F19/00
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 12,711,413
App. No.
18/176,394
Filed
Feb 28, 2023
Granted
Aug 18, 2026
Kind
B2
Art Unit
2843
USPC
330/4.5
Abstract

The disclosure is towards parametric amplifiers with inductive input coupling for quantum computing systems. One example aspect of the present disclosure is directed to a quantum computing system comprising a first qubit, a first measurement device, and a first amplifier. The first measurement device is configured to generate a first qubit signal corresponding to a first quantum state of the first qubit. The first amplifier is configured to amplify the first qubit signal. The first amplifier comprises a first transmission-line resonator. The first transmission-line resonator provides an inductive reactance for an electrical coupling between the first measurement device and the first amplifier. The inductive reactance for the electrical coupling enables a transmission of the first qubit signal.

Claims (31)

1 . A quantum computing system comprising:

a first qubit;

a first measurement device configured to generate a first qubit signal corresponding to a first quantum state of the first qubit; and

a first amplifier configured to amplify the first qubit signal, wherein the first amplifier comprises a first transmission-line resonator that inverts an input coupling reactance of the first amplifier from a capacitive reactance to an inductive reactance, which provides an electrical coupling between the first measurement device and the first amplifier, and the inductive reactance for the electrical coupling enables a transmission of the first qubit signal.

2 . The quantum computing system of claim 1 , wherein the first amplifier is a Josephson parametric amplifier.

3 . The quantum computing system of claim 1 , wherein the first amplifier further comprises a multi-polar impedance matching network that includes a first pole, a second pole, and a third pole.

4 . The quantum computing system of claim 3 , wherein the third pole includes the first transmission-line resonator.

5 . The quantum computing system of claim 4 , wherein a terminal transmission line of the third pole includes a shunt inductor.

6 . The quantum computing system of claim 3 , wherein the first pole includes a first inductive-capacitive (LC) resonating circuit and the second pole includes a second LC resonating circuit.

7 . The quantum computing system of claim 6 , wherein a first capacitor electrically couples the first transmission-line resonator to the second LC resonating circuit.

8 . The quantum computing system of claim 7 , wherein a second capacitor electrically couples the first LC-resonating circuit to the second LC resonating circuit.

9 . The quantum computing system of claim 1 , wherein a non-linear inductor of the first amplifier includes at least one of Josephson Junction, a direct current (DC) superconducting quantum interference device (SQUID), or a radiofrequency (RF) SQUID.

10 . The quantum computing system of claim 1 , wherein the first transmission-line resonator electrically couples a terminal line of the first amplifier to one or more poles of an impedance match network of the first amplifier.

11 . The quantum computing system of claim 1 , wherein the first amplifier has a gain of within a range of 15-25 decibels (dBs).

12 . The quantum computing system of claim 1 , wherein a bandwidth of the first amplifier has a mean frequency of within a range of 4-10 GHz.

13 . The quantum computing system of claim 1 , wherein a bandwidth of the first amplifier has a full-width half-max (FWHM) within a range of 200-600 MHz.

14 . An amplifier device comprising:

a first pole that includes a first inductive-capacitive (LC) resonating circuit;

a second pole that includes a transmission-line resonator that provides an inductive reactance for an input to the amplifier device;

a third pole that includes a second LC resonating circuit; and

a capacitor that electrically couples the first pole and the third pole.

15 . The amplifier device of claim 14 , further comprising:

a multi-polar impedance matching network that includes the first pole, the second pole, and the third pole.

16 . The amplifier device of claim 14 , wherein the second pole further includes a shunt inductor.

17 . The amplifier device of claim 14 , wherein a first inductor of the first LC resonating circuit has a variable inductance.

18 . A quantum computing system comprising:

a set of qubits;

a set of transmission lines, wherein each transmission line of the set of transmission lines is configured to transmit a qubit signal that encodes a measurement of a quantum state of a corresponding qubit of the set of qubits; and

a set of Josephson parametric amplifiers (JPAs), wherein each JPA of the set of JPAs includes a quarter-wavelength transmission-line resonator that electrically couples, via an inductive reactance, the respective JPA to a corresponding transmission line of the set of transmission lines such that the corresponding transmission line inductively provides its qubit signal to the respective JPA for amplification.

19 . The quantum computing system of claim 18 , wherein the quarter-wavelength transmission-line resonator of the respective JPA is configured to invert an input coupling reactance of the respective JPA from a capacitive reactance to the inductive reactance.

20 . The quantum computing system of claim 1 , wherein the first transmission-line resonator is a quarter-wavelength resonator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 1, 2023
From: NAAMAN, OFER
To: GOOGLE LLC
Reel/Frame 062842/0170 →
Continuity (1)
Related Publication 20240289666A1 · Aug 29, 2024
References Cited (10)
US 10491178B2 · Naaman et al. · 2019 [cited by applicant]
US 20220140927A1 · Bronn · 2022 [cited by examiner]
US 20230119964A1 · Beck · 2023 [cited by examiner]
Institute of Electrical and Electronics Engineers Microwave Theory and Techniques Society's International Microwave Symposium (IMS) Program Book, May 10, 2019, 84 pages. [cited by applicant]
Kaufman et al., “Josephson Parametric Amplifier with Chebyshev Gain Profile and High Saturation.”, arXiv:2305.17816v1, May 28, 2023, 10 pages. [cited by applicant]
Naaman et al., “Synthesis of Parametrically Coupled Networks.”, PRX Quantum, vol. 3, Issue 2, May 16, 2022, 37 pages. [cited by applicant]
Roy et al., “Broadband Parametric Amplification with Impedance Engineering: Beyond the Gain- Bandwidth Product.”, arXiv:1510.03065vl, Oct. 11, 2015, 12 pages. [cited by applicant]
International Search Report and Written Opinion for Application No. PCT/US2024/017698, mailed Sep. 9, 2025, 19 pages. [cited by applicant]
White et al., “Readout of a Quantum Processor with High Dynamic Range Josephson Parametric Amplifiers”, arXiv:2209.07757v2, Nov. 23, 2022, 10 pages. [cited by applicant]
International Preliminary Report on Patentability for Application No. PCT/US2024/017698, mailed Sep. 18, 2025, 13 pages. [cited by applicant]