Accessing the role of quantum jumps on non-Hermitian dynamics of a superconducting qubit

ORAL

Abstract

We study the dynamics of a dissipative transmon superconducting qubit whose dissipation comes into two parts: a fast coherent nonunitary dissipation (energy loss) and a slow decoherence due to quantum jumps within the qubit. We observe that the coherence damping rate is enhanced near the exceptional point. Together with the effect of non-Hermitian gain/loss, the decoherence also leads to breakdown of adiabatic evolution under the slow-driving limit. Our study shows the critical role of quantum jumps in generalizing the applications of classical non-Hermitian systems to open quantum systems from sensing to control.

*This work was supported by NSF Grant PHY-1607156 and PHY-1752844 (CAREER), and NSF Grant DMR-1054020 (CAREER). W. Chen acknowledges the support from Center for Quantum Sensors at Washington University.

Presenters

  • Weijian Chen

    • Physics, Washington University, St. Louis
    • Washington University in St. Louis

Authors

  • Weijian Chen

    • Physics, Washington University, St. Louis
    • Washington University in St. Louis
  • Maryam Abbasi

    • Physics, Washington University, St. Louis
    • Washington University in St. Louis
  • Yogesh N Joglekar

    • Physics, Indiana University - Purdue University Indianapolis
    • physics, Indiana University - Purdue University Indianapolis
  • Kater Murch

    • Department of Physics, Washington University in St. Louis
    • Physics, Washington University, St. Louis
    • Washington University in St. Louis
    • Washington University, St. Louis