An electro-opto-mechanical transducer implementation for downconversion of squeezed states of light

ORAL

Abstract

Creating an entangled network of superconducting quantum nodes connected by optical links is a major goal in the fields of quantum computing and networking. Towards this goal, different quantum transducer platforms are the focus of ongoing optimization across multiple inter-connected figures of merit. Our device uses a macroscopic mechanical mode of a Si3N4 membrane as an intermediary, to couple a superconducting LC circuit to a high finesse optical Fabry-Perot cavity for carrying out efficient and low noise frequency conversion across 5 orders of magnitude. Here, we present our ongoing experimental progress towards operating one of these converter devices with the goal of connecting a squeezed light source to the optical input, and preserving the quantum correlations after conversion to microwave frequencies.

*Supported by JILA PFC under NSF award PHY 2317149, and by Army Research Office grant W911NF2310376.

Presenters

  • Jacob Davidson

    • National Institute of Standards and Technology (NIST)
    • NIST and JILA

Authors

  • Jacob Davidson

    • National Institute of Standards and Technology (NIST)
    • NIST and JILA
  • Carlos Bracamontes

    • NIST and CUBoulder
  • Sarang Mittal

    • JILA
    • JILA/ CU Boulder
  • Kazemi Adachi

    • JILA, CU Boulder
    • JILA
  • Maxwell D Urmey

    • JILA
  • Luca G Talamo

    • University of Colorado, Boulder
    • JILA
  • Sheng-Xiang Lin

    • JILA
  • Sarah Dickson

    • JILA
  • Nicholas E Frattini

    • JILA and NIST
  • Cindy A Regal

    • University of Colorado, Boulder
  • Konrad W Lehnert

    • University of Colorado, Boulder
  • Tasshi Dennis

    • NIST