Positive- and negative-frequency noise from an ensemble of two-level fluctuators

ORAL

Abstract

Depolarization of superconducting qubits with intrinsic protection, such as heavy fluxonium or the 0-π qubit, is dominated by excitation rather than relaxation processes. To extract the corresponding excitation rates, it is thus crucial to carefully consider the negative-frequency components of the noise spectral density. We are particularly interested in noise sources with the ubiquitous 1/f spectrum at positive frequencies. Existing models based on an ensemble of two-level fluctuators predict a symmetric noise spectral density valid in the high-temperature limit. We extend the analysis beyond this limit, and derive results explicitly obeying the fluctuation–dissipation theorem. We discuss deviations from pure 1/f behavior and compare with recent experimental observations.

*This research was supported by the U.S. Army Research Office under contract number W911NF-17-C-0024 and the Northwestern–Fermilab Center for Applied Physics and Superconducting Technologies.

Presenters

  • Xinyuan You

    • Northwestern University
    • Graduate Program in Applied Physics, Northwestern University

Authors

  • Xinyuan You

    • Northwestern University
    • Graduate Program in Applied Physics, Northwestern University
  • Aashish Clerk

    • University of Chicago
    • University of Chicago, Pritzker School of Molecular Engineering
    • Argonne Natl Lab
    • Pritzker School of Molecular Engineering, University of Chicago
  • Jens Koch

    • Northwestern University
    • Physics and Astronomy, Northwestern University
    • Department of Physics and Astronomy, Northwestern University
    • Physics, Northwestern University