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Towards entanglement and interconversion of single mm-wave and optical photons in a hybrid cavity-QED system with Rydberg atoms

ORAL

Abstract

I will present our most recent progress towards entangling and interconverting single millimeter wave (mm-wave) and optical photons using Rydberg atoms as a transducer. Hybrid systems, which cross-couple optical and microwave regimes, can harness the unique strengths of optical systems for communication and microwave systems for quantum information processing, yielding a more powerful toolset for quantum information technology. The mm-wave band additionally offers access to single photon resolution at 1K, due to low thermal photon occupation at high frequencies. I will present our recent realization of a hybrid cavity with crossed mm-wave and optical modes, enabling smooth integration of cold atoms, laser beams and Rydberg excitations. The high-Q mm-wave cavity has a Qtot = 3×107 at 98GHz and mode volume of V =0.1λ3, which allows strong coupling with cooperativity of h=22000 between single mm-wave photon and a single Rydberg atom on the 36S → 35P transition. I will report our first observations of intra-cavity vacuum Rabi Splitting, Rydberg Electromagnetically Induced Transparency (EIT) and outline our path towards creating strong interactions between single mm-wave and optical photons.

Presenters

  • Aziza Suleymanzade

    University of Chicago

Authors

  • Aziza Suleymanzade

    University of Chicago

  • Mark J Stone

    University of Chicago

  • Lavanya Taneja

    University of Chicago

  • Alexander Anferov

    University of Chicago

  • Jasmine Kalia

    University of Chicago

  • David I Schuster

    University of Chicago, Physics, University of Chicago, Department of Physics and the James Franck Institute, University of Chicago, The James Franck Institute and Department of Physics, University of Chicago, The James Franck Institute and Department of Physics, The University of Chicago

  • Jonathan Simon

    Physics, University of Chicago, University of Chicago