A dissipatively stabilized Mott-insulator of photons

ORAL

Abstract


The rich physics of strongly-correlated quantum materials can be explored in synthetic systems built with microwave photons in superconducting circuits in the circuit QED paradigm. However, the intrinsic loss in photonic platforms makes many-body quantum state preparation a challenge. We build a 1D Bose-Hubbard lattice for photons where capacitively coupled transmon qubits serve as lattice sites, and the transmon anharmonicity corresponds to strong photon-photon interaction. We employ an engineered reservoir to realize a dissipatively stabilized site and couple it to the lattice to stabilize a n=1 Mott insulator. Site-resolved microscopy allow detailed studies of the thermalization process through the dynamics of defect propagation and removal in the Mott phase. By probing two-site correlations, we could investigate the emergence of correlations and entanglement in these driven-dissipative systems.

*We acknowledge support from the following agencies:

This work was supported by Army Research Office grant W911NF-15-1-0397
Support was provided by the Chicago MRSEC, which is funded by NSF through grant DMR-1420709.
This work was supported by MURI ARO Grant No. W911NF-15-1-0397
This work was also supported by NSF Grant No. ECCS - 1542205

Presenters

  • Brendan Saxberg

    • Physics, University of Chicago
    • University of Chicago

Authors

  • Brendan Saxberg

    • Physics, University of Chicago
    • University of Chicago
  • Ruichao Ma

    • Physics, University of Chicago
    • University of Chicago
  • Clai Owens

    • University of Chicago
  • Jonathan Simon

    • University of Chicago
    • Physics, University of Chicago
  • David Schuster

    • University of Chicago
    • The University of Chicago
    • Physics, University of Chicago
    • Department of Physics, University of Chicago