Reservoir engineering and dynamical phase transitions in optomechanical arrays
Quantum Physics
2012-09-24 v2 Mesoscale and Nanoscale Physics
Abstract
We study the driven-dissipative dynamics of photons interacting with an array of micromechanical membranes in an optical cavity. Periodic membrane driving and phonon creation result in an effective photon-number conserving non-unitary dynamics, which features a steady state with long-range photonic coherence. If the leakage of photons out of the cavity is counteracted by incoherent driving of the photonic modes, we show that the system undergoes a dynamical phase transition to the state with long-range coherence. A minimal system, composed of two micromechanical membranes in a cavity, is studied in detail, and it is shown to be a realistic setup where the key processes of the driven-dissipative dynamics can be seen.
Cite
@article{arxiv.1206.6321,
title = {Reservoir engineering and dynamical phase transitions in optomechanical arrays},
author = {A. Tomadin and S. Diehl and M. D. Lukin and P. Rabl and P. Zoller},
journal= {arXiv preprint arXiv:1206.6321},
year = {2012}
}
Comments
16 pages, 9 figures