Offset charge dependence of MIST and Stark Shift TLS characterization

ORAL  · Invited

Abstract

A key challenge in achieving scalable fault tolerance in superconducting quantum processors is readout fidelity, which lags behind one- and two-qubit gate fidelity. A major limitation in improving qubit readout is measurement-induced transitions, also referred to as qubit ionization, caused by multiphoton qubit-resonator excitation occurring at specific photon numbers. Since ionization can involve highly excited states, it has been predicted that in transmons -- the most widely used superconducting qubit -- the photon number at which measurement-induced transitions occur is gate charge dependent. This dependence is expected to persist deep in the transmon regime where the qubit frequency is gate charge insensitive. We experimentally confirm this prediction by characterizing measurement-induced transitions with increasing resonator photon population while actively stabilizing the transmon's gate charge. Furthermore, because highly excited states are involved, achieving quantitative agreement between theory and experiment requires accounting for higher-order harmonics in the transmon Hamiltonian.

*Qsolid

Presenters

  • Mathieu Féchant

    • Karlsruhe Institute of Technology

Authors

  • Mathieu Féchant

    • Karlsruhe Institute of Technology
  • Denis Bénâtre

    • Karlsruhe Institute of Technology
    • Karlsruhe Institut of technology
  • Ioan M. Pop

    • Karlsruhe Institute of Technology
  • Nicolas Gosling

    • Karlsruhe Institute of Technology
  • Soeren Ihssen

    • Karlsruhe Institute of Technology
  • Alexandre Blais

    • Université de Sherbrooke
    • University of Sherbrooke
    • Universite de Sherbrooke
    • Institut Quantique, Département de Physique, Université de Sherbrooke
  • Marie Frédérique Dumas

    • Université de Sherbrooke
    • Université de Sherbrooke, Nord Quantique
  • Benjamin D'Anjou

    • usherbrooke
  • Simon Geisert

    • Karlsruhe Institute of Technology
  • philipp Lenhard

    • Karlsruhe Institute of Technology
  • Martin Spiecker

    • Karlsruhe Institute of Technology