• DocumentCode
    738222
  • Title

    Reducing Spontaneous Emission in Circuit Quantum Electrodynamics by a Combined Readout/Filter Technique

  • Author

    Bronn, Nicholas T. ; Magesan, Easwar ; Masluk, Nicholas A. ; Chow, Jerry M. ; Gambetta, Jay M. ; Steffen, Matthias

  • Author_Institution
    IBM T.J. Watson Res. Center, Yorktown Heights, NY, USA
  • Volume
    25
  • Issue
    5
  • fYear
    2015
  • Firstpage
    1
  • Lastpage
    10
  • Abstract
    Physical implementations of qubits can be extremely sensitive to environmental coupling, which can result in decoherence. While efforts are made for protection, coupling to the environment is necessary to measure and manipulate the state of the qubit. As such, the goal of having long qubit energy relaxation times is in competition with that of achieving high-fidelity qubit control and measurement. Here, we propose a method that integrates filtering techniques for preserving superconducting qubit lifetimes together with the dispersive coupling of the qubit to a microwave resonator for control and measurement. The result is a compact circuit that protects qubits from spontaneous loss to the environment, while also retaining the ability to perform fast, high-fidelity readout. Importantly, we show the device operates in a regime that is attainable with current experimental parameters and provide a specific example for superconducting qubits in circuit quantum electrodynamics.
  • Keywords
    coupled circuits; microwave filters; microwave resonators; quantum electrodynamics; spontaneous emission; circuit quantum electrodynamics; combined readout-filter technique; compact circuit; dispersive coupling; high-fidelity qubit control; high-fidelity qubit measurement; high-fidelity readout; microwave resonator; qubit energy relaxation times; spontaneous emission; superconducting qubit lifetimes; Approximation methods; Capacitors; Cavity resonators; Couplings; Dispersion; Resonant frequency; Superconducting microwave devices; Circuit quantum electrodynamics; crostalk; linear discriminant analysis; microwave measurement; quantum computing; spontaneous emission; superconducting microwave devices;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2015.2456109
  • Filename
    7156088