IP Library Patent Application 18933618
Patent Application
App. No. 18/933,618

SYSTEMS AND METHODS OF ZZ CANCELLATION USING A DRIVEN RESONATOR IN A SUPERCONDUCTING QUANTUM PROCESSOR UNIT

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Patent No.
US None
App. No.
18/933,618
Abstract

A superconducting quantum processor unit (QPU) comprising a resonator having a resonator frequency ω C coupled between a control qubit having a control frequency ω L and a target qubit having a target frequency ω R . The control frequency ω L is detuned from the target frequency ω R at less than a detuning gap of the resonator frequency ω C . A microwave drive applies to the resonator a resonator drive frequency ω c d at a drive strength substantially equal to a ZZ-free operating point 0 of a controlled phase for the control qubit, resonator, and target qubit to induce entanglement between the control and target qubits. The effective ZZ coupling between the control and target qubits vanishes at operating point 0 . The resonator may be of either a 2D or a 3D high-coherence resonator type. Control and target qubits may be of a fixed-frequency transmon type (e.g., cross-resonance (CR) Controlled-NOT (CNOT) or adiabatic Controlled-Z (CZ)).

Claims (30)

1 . A quantum computing system comprising:

a superconducting quantum processor unit (QPU) comprising:

a control qubit device characterized by a control frequency ω L ,

a target qubit device characterized by a target frequency ω R , and

a resonator device coupled between the control and target qubit devices, and characterized by a resonator frequency ω C having a detuning gap from the control frequency ω L and from the target frequency ω R ; and

a microwave drive configured to apply to the resonator device a resonator drive frequency ω c d at a drive strength D substantially equal to a ZZ-free operating point D 0 of a controlled phase for the control qubit, resonator, and target qubit devices.

2 . The quantum computing system according to claim 1 , wherein the resonator device is of one of a two-dimensional (2D) high-coherence resonator type and a three-dimensional (3D) high-coherence resonator type.

3 . The quantum computing system according to claim 1 , wherein each of the control and target qubit devices is of a two-qubit electrode type and capacitively connected to the resonator device.

4 . The quantum computing system according to claim 1 , wherein each of the control and target qubit devices is of a fixed-frequency transmon type.

5 . The quantum computing system according to claim 1 , wherein the resonator device comprises a superconducting radio frequency (SRF) cavity.

6 . The quantum computing system according to claim 1 , wherein the detuning gap is approximately 5 gigahertz (GHz).

7 . The quantum computing system according to claim 6 , wherein the control frequency ω L is detuned from the target frequency ω R at less than the detuning gap of the resonator frequency ω C .

8 . The quantum computing system according to claim 1 , wherein the resonator device is in a displaced vacuum state during the controlled phase.

9 . The quantum computing system according to claim 1 , wherein the superconducting quantum processor unit (QPU) is of a two-qubit entangling gate type selected from the group consisting of a cross-resonance (CR) Controlled-NOT (CNOT) gate type and an adiabatic Controlled-Z (CZ) gate type.

10 . A quantum computing system comprising:

a qubit-resonator chain comprising:

a plurality N of qubit devices, including a j th qubit device characterized by a control frequency ω q,j and a j+l th qubit device characterized by a control frequency ω q,j+1 ;

a plurality N-1 of resonator devices coupled between adjacent pairs of the plurality N of qubit devices, including a j th resonator device characterized by a resonator frequency ω c,j having a detuning gap; from the control frequency ω q,j and from the control frequency ω q,j+1 ; and

a microwave drive configured to apply to the j th resonator device a j th resonator drive frequency ω c,j d at a drive strength D j substantially equal to a ZZ-free operating point D 0,j of a controlled phase for the j th qubit, j th resonator, and j+l th qubit devices.

11 . The quantum computing system according to claim 10 , wherein at least one of the plurality N-1 of resonator devices is of one of a two-dimensional (2D) high-coherence resonator type and a three-dimensional (3D) high-coherence resonator type.

12 . The quantum computing system according to claim 10 , wherein each of the jth and j+lth qubit devices is of a two-qubit electrode type and capacitively connected to the jth resonator device.

13 . The quantum computing system according to claim 10 , wherein each of the plurality N of qubit devices is of a fixed-frequency transmon type.

14 . The quantum computing system according to claim 10 , wherein at least one of the plurality N-1 of resonator devices comprises a superconducting radio frequency (SRF) cavity.

15 . The quantum computing system according to claim 10 , wherein the detuning gap j is approximately 5 gigahertz (GHz).

16 . The quantum computing system according to claim 10 , wherein the jth resonator device is in a displaced vacuum state during the controlled phase.

17 . The quantum computing system according to claim 10 , further comprising an Nth resonator device coupled between a non-adjacent pair of the plurality N of qubit devices.

18 . A method of operating a superconducting quantum processor unit (QPU) comprising a control qubit device characterized by a control frequency ω L , a target qubit device characterized by a target frequency ω R , and a resonator device coupled between the control and target qubit devices and characterized by a resonator frequency ω C having a detuning gap from the control frequency ω L and from the target frequency ω R ; the method comprising the step of:

applying, using a microwave drive, a resonator drive frequency ω C to the resonator device at a drive strength D substantially equal to a ZZ-free operating point d 0 of a controlled phase for the control qubit, resonator, and target qubit devices.

19 . The method according to claim 18 , further comprising applying a control drive frequency ω L d to the control qubit device.

20 . The method according to claim 18 , further comprising applying a target drive frequency ω R d to the target qubit device.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 2, 2025
From: FERMI RESEARCH ALLIANCE, LLC
To: FERMI FORWARD DISCOVERY GROUP, LLC
Reel/Frame 069716/0452 →
CONFIRMATORY LICENSE Recorded Dec 16, 2024
From: FERMI RESEARCH ALLIANCE, LLC
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 069597/0394 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2024
From: HUANG, ZIWEN; KIM, TAEYOON; ROY, TANAY; LU, YAO; ZHU, SHAOJIANG
To: FERMI RESEARCH ALLIANCE, LLC
Reel/Frame 069095/0171 →