Keldysh approach for non-equilibrium phase transitions in quantum optics: beyond the Dicke model in optical cavities
Abstract
We investigate non-equilibrium phase transitions for driven atomic ensembles, interacting with a cavity mode, coupled to a Markovian dissipative bath. In the thermodynamic limit and at low-frequencies, we show that the distribution function of the photonic mode is thermal, with an effective temperature set by the atom-photon interaction strength. This behavior characterizes the static and dynamic critical exponents of the associated superradiance transition. Motivated by these considerations, we develop a general Keldysh path integral approach, that allows us to study physically relevant nonlinearities beyond the idealized Dicke model. Using standard diagrammatic techniques, we take into account the leading-order corrections due to the finite number of atoms N. For finite N, the photon mode behaves as a damped, classical non-linear oscillator at finite temperature. For the atoms, we propose a Dicke action that can be solved for any N and correctly captures the atoms' depolarization due to dissipative dephasing.
Keywords
Cite
@article{arxiv.1210.3623,
title = {Keldysh approach for non-equilibrium phase transitions in quantum optics: beyond the Dicke model in optical cavities},
author = {Emanuele G. Dalla Torre and Sebastian Diehl and Mikhail D. Lukin and Subir Sachdev and Philipp Strack},
journal= {arXiv preprint arXiv:1210.3623},
year = {2013}
}
Comments
20 pages, 9 figures. Extended discussion of 1/N corrections