English

Single-photon induced instabilities in a cavity electromechanical device

Quantum Physics 2024-09-02 v2 Mesoscale and Nanoscale Physics

Abstract

Cavity-electromechanical systems are extensively used for sensing and controlling the vibrations of mechanical resonators down to their quantum limit. The nonlinear radiation-pressure interaction in these systems could result in an unstable response of the mechanical resonator showing features such as frequency-combs, period-doubling bifurcations and chaos. However, due to weak light-matter interaction, typically these effects appear at very high driving strengths. By using polariton modes formed by a strongly coupled flux-tunable transmon and a microwave cavity, here we demonstrate an electromechanical device and achieve a single-photon coupling rate g0/2πg_0/2\pi of 160 160~kHz, which is nearly 4\% of the mechanical frequency ωm\omega_m. Due to large g0/ωmg_0/\omega_m ratio, the device shows an unstable mechanical response resulting in frequency combs in sub-single photon limit. We systematically investigate the boundary of the unstable response and identify two important regimes governed by the optomechanical backaction and the nonlinearity of the electromagnetic mode. Such an improvement in the single-photon coupling rate and the observations of microwave frequency combs at single-photon levels may have applications in the quantum control of the motional states and critical parametric sensing. Our experiments strongly suggest the requirement of newer approaches to understand instabilities.

Keywords

Cite

@article{arxiv.2309.06765,
  title  = {Single-photon induced instabilities in a cavity electromechanical device},
  author = {Tanmoy Bera and Mridul Kandpal and G. S. Agarwal and Vibhor Singh},
  journal= {arXiv preprint arXiv:2309.06765},
  year   = {2024}
}

Comments

Total 25 pages with 12 figures (6 Main, 6 Supplementary)

R2 v1 2026-06-28T12:20:03.314Z