Quantum many-body dynamics in optomechanical arrays
Abstract
We study the nonlinear driven dissipative quantum dynamics of an array of optomechanical systems. At each site of such an array, a localized mechanical mode interacts with a laser-driven cavity mode via radiation pressure, and both photons and phonons can hop between neighboring sites. The competition between coherent interaction and dissipation gives rise to a rich phase diagram characterizing the optical and mechanical many-body states. For weak intercellular coupling, the mechanical motion at different sites is incoherent due to the influence of quantum noise. When increasing the coupling strength, however, we observe a transition towards a regime of phase-coherent mechanical oscillations. We employ a Gutzwiller ansatz as well as semiclassical Langevin equations on finite lattices, and we propose a realistic experimental implementation in optomechanical crystals.
Cite
@article{arxiv.1208.0327,
title = {Quantum many-body dynamics in optomechanical arrays},
author = {Max Ludwig and Florian Marquardt},
journal= {arXiv preprint arXiv:1208.0327},
year = {2013}
}
Comments
5+4 pages, 4+3 figures; revised manuscript