Spatial correlations in driven-dissipative photonic lattices
Abstract
We study the nonequilibrium steady-state of interacting photons in cavity arrays as described by the driven-dissipative Bose-Hubbard and spin- XY model. For this purpose, we develop a self-consistent expansion in the inverse coordination number of the array () to solve the Lindblad master equation of these systems beyond the mean-field approximation. Our formalism is compared and benchmarked with exact numerical methods for small systems based on an exact diagonalization of the Liouvillian and a recently developed corner-space renormalization technique. We then apply this method to obtain insights beyond mean-field in two particular settings: (i) We show that the gas--liquid transition in the driven-dissipative Bose-Hubbard model is characterized by large density fluctuations and bunched photon statistics. (ii) We study the antibunching--bunching transition of the nearest-neighbor correlator in the driven-dissipative spin- XY model and provide a simple explanation of this phenomenon.
Cite
@article{arxiv.1709.03762,
title = {Spatial correlations in driven-dissipative photonic lattices},
author = {Matteo Biondi and Saskia Lienhard and Gianni Blatter and Hakan E. Tureci and Sebastian Schmidt},
journal= {arXiv preprint arXiv:1709.03762},
year = {2018}
}
Comments
12 pages, 6 figures, submitted to New Journal of Physics (Focus issue on Many-body Physics with Photons and Polaritons) on August 22nd, 2017