IP Library › Granted Patent US 12,500,324
Granted Patent B2
US 12,500,324 · App. 18/344,977 · Granted Dec 16, 2025

Multipole multiband isolator devices

Inventors: Matthew Beck (Danbury, CT); Michael Karunendra Selvanayagam (Ossining, NY); Corrado P Mancini (Hopewell Junction, NY)
Assignee: International Business Machines Corporation
H01P1/36H01P1/397H03H11/04H10N60/12
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 12,500,324
App. No.
18/344,977
Granted
Dec 16, 2025
Kind
B2
Abstract

A device comprises filter circuitry and non-linear mixing devices. The filter circuitry comprises a first port, a second port, a first bandpass filter, and a second bandpass filter. The non-linear mixing devices are responsive to control signals to couple poles of the first bandpass filter to respective poles of the second bandpass filter to cause non-reciprocal transmission of signals from the first port to the second port.

Claims (68)

1 . A device, comprising:

filter circuitry comprising a first port, a second port, a first bandpass filter, and a second bandpass filter; and

non-linear mixing devices which are responsive to control signals to couple poles of the first bandpass filter to respective poles of the second bandpass filter to cause non-reciprocal transmission of signals from the first port to the second port.

2 . The device of claim 1 , wherein the first bandpass filter and the second bandpass filter each comprise an immittance inverting bandpass filter.

3 . The device of claim 1 , wherein the non-linear mixing devices are driven by respective control signals having a same frequency and different phases.

4 . The device of claim 3 , wherein the respective control signals have similar or different amplitudes.

5 . The device of claim 1 , wherein:

the first bandpass filter comprises a first passband with a first center frequency;

the second bandpass filter comprises a second passband with a second center frequency;

the first passband and the second passband are non-overlapping passbands; and

the control signals are applied to the non-linear mixing devices and comprise radio frequency signals having a frequency which is a function of a difference between the first center frequency and the second center frequency.

6 . The device of claim 1 , wherein the non-linear mixing devices comprise direct current superconducting quantum interference devices.

7 . The device of claim 1 , wherein the non-linear mixing devices comprise Josephson parametric converter devices, wherein each Josephson parametric converter device comprises a Josephson ring modulator which is configured to couple respective poles of the first bandpass filter and the second bandpass filter.

8 . The device of claim 1 , wherein:

the first bandpass filter comprises a first terminal that is connected to the first port and a second terminal that is connected to the second port;

the second bandpass filter comprises a first terminal that is terminated and a second terminal that is terminated.

9 . A system, comprising:

a quantum processor comprising quantum bits;

a readout signal path configured to transmit signals that are readout from one or more of the quantum bits of the quantum processor, the readout signal path comprising an isolator circuit which comprises:

filter circuitry comprising a first port, a second port, a first bandpass filter, and a second bandpass filter; and

non-linear mixing devices which are responsive to control signals to couple poles of the first bandpass filter to respective poles of the second bandpass filter to cause non-reciprocal transmission of signals through the isolator circuit from the first port to the second port.

10 . The system of claim 9 , wherein the first bandpass filter and the second bandpass filter of the isolator circuit each comprise an immittance inverting bandpass filter.

11 . The system of claim 9 , wherein the non-linear mixing devices of the isolator circuit are driven by respective control signals having a same frequency and different phases.

12 . The system of claim 11 , wherein the respective control signals have similar or different amplitudes.

13 . The system of claim 9 , wherein:

the first bandpass filter comprises a first passband with a first center frequency;

the second bandpass filter comprises a second passband with a second center frequency;

the first passband and the second passband are non-overlapping passbands; and

the control signals are applied to the non-linear mixing devices and comprise radio frequency signals having a frequency which is a function of a difference between the first center frequency and the second center frequency.

14 . The system of claim 9 , wherein the non-linear mixing devices comprise direct current superconducting quantum interference devices.

15 . The system of claim 9 , wherein the non-linear mixing devices comprise Josephson parametric converter devices, wherein each Josephson parametric converter device comprises a Josephson ring modulator which is configured to couple respective poles of the first bandpass filter and the second bandpass filter.

16 . The system of claim 9 , wherein:

the first bandpass filter comprises a first terminal that is connected to the first port and a second terminal that is connected to the second port;

the second bandpass filter comprises a first terminal that is terminated and a second terminal that is terminated.

17 . A device, comprising:

an isolator circuit, wherein the isolator circuit comprises:

a first port and a second port;

a first multipole immittance inverting bandpass filter;

a second multipole immittance inverting bandpass filter;

non-linear mixing devices which couple poles of the first multipole immittance inverting bandpass filter to respective poles of the second multipole immittance inverting bandpass filter; and

a transmission line commonly coupled to each of the non-linear mixing devices, and configured to apply a control signal to each of the non-linear mixing devices at a given frequency with different phase shifts, to cause non-reciprocal transmission of signals from the first port to the second port of the isolator circuit.

18 . The device of claim 17 , wherein:

the first multipole immittance inverting bandpass filter comprises a first passband with a first center frequency;

the second multipole immittance inverting bandpass filter comprises a second passband with a second center frequency;

the first passband and the second passband are non-overlapping passbands; and

the given frequency of the control signal is a function of a difference between the first center frequency and the second center frequency.

19 . A system, comprising:

a quantum processor comprising quantum bits;

a readout signal path configured to transmit signals that are readout from one or more of the quantum bits of the quantum processor, the readout signal path comprising an isolator circuit which comprises:

a first port and a second port;

a first multipole immittance inverting bandpass filter;

a second multipole immittance inverting bandpass filter;

non-linear mixing devices which couple poles of the first multipole immittance inverting bandpass filter to respective poles of the second multipole immittance inverting bandpass filter; and

a transmission line commonly coupled to each of the non-linear mixing devices, and configured to apply a control signal to each of the non-linear mixing devices at a given frequency with different phase shifts, to cause non-reciprocal transmission of signals from the first port to the second port of the isolator circuit.

20 . The system of claim 19 , wherein:

the first multipole immittance inverting bandpass filter comprises a first passband with a first center frequency;

the second multipole immittance inverting bandpass filter comprises a second passband with a second center frequency;

the first passband and the second passband are non-overlapping passbands; and

the given frequency of the control signal is a function of a difference between the first center frequency and the second center frequency.

21 . The system of claim 19 , further comprising a signal generator configured to generate the control signal, wherein the control signal comprises a radio frequency current signal, and a control line which is coupled to the transmission line and configured to transmit the control signal from the signal generator to the transmission line.

22 . A method comprising applying control signals to non-linear mixing devices, configured to couple poles of a first bandpass filter to respective poles of a second bandpass filter, to cause non-reciprocal transmission of signals from a first port of the first bandpass filter to a second port of the first bandpass filter.

23 . The method of claim 22 , wherein:

the first bandpass filter comprises a first passband with a first center frequency;

the second bandpass filter comprises a second passband with a second center frequency;

the first passband and the second passband are non-overlapping passbands; and

applying control signals to the non-linear mixing devices comprises driving the non-linear mixing devices with respective control signals having a given frequency and different phases, wherein the given frequency of each of the control signals is a function of a difference between the first center frequency and the second center frequency.

24 . The method of claim 22 , wherein the non-linear mixing devices comprise direct current superconducting quantum interference devices.

25 . The method of claim 22 , wherein the non-linear mixing devices comprise Josephson parametric converter devices, wherein each Josephson parametric converter device comprises a Josephson ring modulator which is configured to couple respective poles of the first bandpass filter and the second bandpass filter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2023
From: BECK, MATTHEW; SELVANAYAGAM, MICHAEL KARUNENDRA; MANCINI, CORRADO P
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 064124/0212 →
Continuity (1)
Related Publication 20250007141A1 · Jan 2, 2025
References Cited (21)
US 9509274B2 · Naaman et al. · 2016 [cited by applicant]
US 10050630B2 · Reagor et al. · 2018 [cited by applicant]
US 11105866B2 · Swenson et al. · 2021 [cited by applicant]
US 11177912B2 · Elsherbini et al. · 2021 [cited by applicant]
US 20160308502A1 · Abdo et al. · 2016 [cited by applicant]
US 20170093381A1 · Abdo · 2017 [cited by applicant]
US 20210066570A1 · Luethi et al. · 2021 [cited by applicant]
US 20220115577A1 · Beck et al. · 2022 [cited by applicant]
US 20220263468A1 · Yamamoto et al. · 2022 [cited by applicant]
US 20230052753A1 · Govenius et al. · 2023 [cited by applicant]
US 20230119964A1 · Beck et al. · 2023 [cited by applicant]
US 20230208419A1 · Mancini et al. · 2023 [cited by applicant]
US 20240372241A1 · Khaira · 2024 [cited by examiner]
US 20250255196A1 · Beck et al. · 2025 [cited by applicant]
WO 2025003124A1 · 2025 [cited by applicant]
F. Lecocq et al., “Nonreciprocal Microwave Signal Processing with a Field-Programmable Josephson Amplifier,” arXiv:1612.01438v1, Dec. 5, 2016, 17 pages. [cited by applicant]
M. A. Beck, et al., “Wideband Josephson Parametric Isolator,” arXiv:2212.08563v1, Dec. 16, 2022, 10 pages. [cited by applicant]
O. Naaman et al., “Synthesis of Parametrically-Coupled Networks,” arXiv:2109.11628v4, Apr. 27, 2022, 37 pages. [cited by applicant]
D. Simpson et al., “Non-Reciprocal Balanced Bandpass Filters With Quasi-Elliptic Response,” IEEE Transactions on Circuits and Systems II, vol. 69, No. 12, Aug. 29, 2022, 5 pages. [cited by applicant]
O. Naaman et al., “Synthesis of Parametrically-Coupled Networks,” https://doi.org/10.1103/PRXQuantum.3.020201, Feb. 15, 2022, 37 pages. [cited by applicant]
PCT/EP2024/067790, International Search Report and Written Opinion, Oct. 30, 2024, 15 pages. [cited by applicant]