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Quantum-enabled millimetre wave to optical transduction using neutral atoms

Author

Listed:
  • Aishwarya Kumar

    (The University of Chicago
    Stanford University)

  • Aziza Suleymanzade

    (The University of Chicago)

  • Mark Stone

    (The University of Chicago)

  • Lavanya Taneja

    (The University of Chicago)

  • Alexander Anferov

    (The University of Chicago)

  • David I. Schuster

    (The University of Chicago
    Stanford University)

  • Jonathan Simon

    (The University of Chicago
    Stanford University
    Stanford University)

Abstract

Early experiments with transiting circular Rydberg atoms in a superconducting resonator laid the foundations of modern cavity and circuit quantum electrodynamics1, and helped explore the defining features of quantum mechanics such as entanglement. Whereas ultracold atoms and superconducting circuits have since taken rather independent paths in the exploration of new physics, taking advantage of their complementary strengths in an integrated system enables access to fundamentally new parameter regimes and device capabilities2,3. Here we report on such a system, coupling an ensemble of cold 85Rb atoms simultaneously to an, as far as we are aware, first-of-its-kind optically accessible, three-dimensional superconducting resonator4 and a vibration-suppressed optical cavity in a cryogenic (5 K) environment. To demonstrate the capabilities of this platform, and with an eye towards quantum networking5, we leverage the strong coupling between Rydberg atoms and the superconducting resonator to implement a quantum-enabled millimetre wave (mmwave) photon to optical photon transducer6. We measured an internal conversion efficiency of 58(11)%, a conversion bandwidth of 360(20) kHz and added thermal noise of 0.6 photons, in agreement with a parameter-free theory. Extensions of this technique will allow near-unity efficiency transduction in both the mmwave and microwave regimes. More broadly, our results open a new field of hybrid mmwave/optical quantum science, with prospects for operation deep in the strong coupling regime for efficient generation of metrologically or computationally useful entangled states7 and quantum simulation/computation with strong non-local interactions8.

Suggested Citation

  • Aishwarya Kumar & Aziza Suleymanzade & Mark Stone & Lavanya Taneja & Alexander Anferov & David I. Schuster & Jonathan Simon, 2023. "Quantum-enabled millimetre wave to optical transduction using neutral atoms," Nature, Nature, vol. 615(7953), pages 614-619, March.
  • Handle: RePEc:nat:nature:v:615:y:2023:i:7953:d:10.1038_s41586-023-05740-2
    DOI: 10.1038/s41586-023-05740-2
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    Cited by:

    1. Liu Qiu & Rishabh Sahu & William Hease & Georg Arnold & Johannes M. Fink, 2023. "Coherent optical control of a superconducting microwave cavity via electro-optical dynamical back-action," Nature Communications, Nature, vol. 14(1), pages 1-8, December.

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