Noise Thermometry for Macroscopic Cavity Optomechanics

ORAL

Abstract

We are in the phase of developing macroscopic optomechanical systems using superconducting radio frequency (SRF) cylindrical cavities. One of the important steps for optomechanics is observing and calibrating the noise thermometry of the system, in terms of both cavity and mechanical occupation. One such improvement with our optomechanical system includes a capacitive detector and driver placed on the outside of the SRF cavity. This integration allows us to induce motion in the membrane as well as observe the response. Here, we discuss the methods and results for developing a cm-scale optomechanical system. Despite a low vacuum optomechanical coupling coefficient (g0/2π ≈ 1 × 10−5 Hz), we anticipate a working structure that provides a platform for future macroscopic optomechanical systems.

*Supported by DARPA-BAA-14-46

Presenters

  • Jacob Pate

    • School of Natural Sciences, Univ of California - Merced

Authors

  • Jacob Pate

    • School of Natural Sciences, Univ of California - Merced
  • Alessandro Castelli

    • School of Natural Sciences, Univ of California - Merced
  • Luis Martinez

    • School of Natural Sciences, Univ of California - Merced
  • Johnathon Thompson

    • School of Natural Sciences, Univ of California - Merced
  • Raymond Chiao

    • School of Natural Sciences, Univ of California - Merced
  • Keith Schwab

    • Applied Physics, Caltech
    • Applied Physics, California Institute of Technology
  • Jay Sharping

    • School of Natural Sciences, University of California, Merced
    • School of Natural Sciences, Univ of California - Merced