Nova Patents
EP1518208A2

Resonant controlled qubit system

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 22 April 2023, 3.4 years ago.

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122 claims: 7 independent, 115 dependent

  1. 1
    Claims of equivalent WO 03090162 A2 What is claimed is:1. A circuit comprising: a superconducting qubit having a qubit frequency between 0.8 GHz and 40 GHz;a resonant control system that is characterized by a resonant frequency, wherein said resonant frequency is a function of a bias current;and a superconducting mechanism coherently coupled to the superconducting qubit and said resonant control system, wherein said superconducting mechanism has a capacitance or an inductance.
  2. 14
    A quantum register, comprising:an array of superconducting qubits;at least one resonant control system having a characteristic resonance frequency;and a bus mechanism for capacitively or inductively coupling each superconducting qubit in said array of superconducting qubits to a resonant control system in said at least one resonant control system.
  3. 32
    A method for entangling a quantum state of a first qubit with a quantum state of a second qubit, the method comprising:tuning a resonant control system, which is capacitively or inductively coupled to said first qubit and said second qubit, to a first frequency for a first period of time, wherein said first frequency corresponds to an energy differential between a first potential energy level and a second potential energy level of said first qubit;and adjusting said resonant control system to a second frequency for a second period of time, wherein said second frequency corresponds to an energy differential between a first potential energy level and a second potential energy level of said second qubit, thereby entangling the quantum state of the first qubit with the quantum state of the second qubit.
  4. 55
    A method for entangling a first qubit in a first qubit group with a second qubit in a second qubit group, the method comprising:(A) coupling, for a first period of time, said first qubit with a first resonant control system by biasing said first resonant control system to a first frequency, said first frequency determined by an energy differential between a first potential energy level and a second potential energy level of said first qubit;(B) coupling, for a second period of time, said first resonant control system to a pivot qubit by biasing said resonant control system to a second frequency, said second frequency determined by an energy differential between a first potential energy level and a second potential energy level of said pHvot qubit;(C) isolating said pivot qubit from said first qubit group and said first resonant control system;(D) coupling, for a third period of time, a second resonant control system with said pivot qubit by biasing said second resonant control system to a third frequency, said third frequency determined by said energy differential between said first potential energy level and said second potential energy level of said pivot qubit;wherein said second resonant control system is capacitively or inductively coupled to said second qubit in said second qubit group;(E) isolating said second qubit group and said second resonant control system from said pivot qubit;and (F) coupling, for a fourth period of time, said second resonant control system with said second qubit by biasing said second resonant control system to a fourth frequency, said fourth frequency determined by a first potential energy level and a second potential energy level of said second qubit.
  5. 78
    A method for entangling a quantum state of a first qubit with a quantum state of a second qubit, the method comprising:(A) tuning a ground state energy difference between a potential energy state of said first qubit and a potential energy state of said second qubit so that the energy difference corresponds to a predetermined frequency;and (B) biasing a resonant control system, which is capacitively coupled to said first qubit and second qubit, to said predetermined frequency for a period of time.
  6. 90
    A method for coupling a system comprising a superconducting qubit and a resonant control circuit, wherein an interaction term of a native interaction Hamiltonian that describes an interaction between said superconducting qubit and said resonant control circuit has a diagonal component, the method comprising:(A) applying a recoupling operation a first time to the superconducting qubit;(B) tuning, for an amount of time, the resonant control circuit so that a resonant frequency of the superconducting qubit and a resonant frequency of the resonant control circuit match;and (C) applying the recoupling operation a second time to the superconducting qubit, thereby transforming the interaction term of the Hamiltonian to have only off-diagonal components.
  7. 102
    A method for entangling a state of a first qubit and a state of a second qubit in a system comprising (i) said first qubit, (ii) said second qubit, and (iii) a resonant control circuit, wherein said first qubit, said second qubit, and said resonant control circuit are each respectively coupled to a bus and wherein an interaction term of a native interaction Hamiltonian that describes an interaction between at least one of said first qubit and said second qubit with said resonant control circuit has a diagonal component, the method comprising:(A) applying a recoupling operation to at least one of said first qubit and said second qubit, wherein said recoupling operation transforms said interaction term so that it has only off-diagonal components;(B) tuning, for a first amount of time, the resonant control circuit so that a resonant frequency of the first qubit and a resonant frequency of the resonant control circuit match;(C) tuning, for a second amount of time, the resonant control circuit so that a resonant frequency of the second qubit and a resonant frequency of the resonant control circuit match;and (D) reapplying the recoupling operation to said at least one of said first qubit and said second qubit.