arXiv · 1704.08978
Phase diagram of incoherently driven strongly correlated photonic lattices
Abstract
We explore theoretically the nonequilibrium photonic phases of an array of coupled cavities in presence of incoherent driving and dissipation. In particular, we consider a Hubbard model system where each site is a Kerr nonlinear resonator coupled to a two-level emitter, which is pumped incoherently. Within a Gutzwiller mean-field approach, we determine the steady-state phase diagram of such a system. We find that, at a critical value of the inter-cavity photon hopping rate, a second-order nonequilibrium phase transition associated with the spontaneous breaking of the $U(1)$ symmetry occurs. The transition from an incompressible Mott-like photon fluid to a coherent delocalized phase is driven by commensurability effects and not by the competition between photon hopping and optical nonlinearity. The essence of the mean-field predictions is corroborated by finite-size simulations obtained with matrix product operators and corner-space renormalization methods.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Alberto Biella, Florent Storme, José Lebreuilly, Davide Rossini, Rosario Fazio, Iacopo Carusotto, Cristiano Ciuti. 2017-08-24. Phase diagram of incoherently driven strongly correlated photonic lattices. https://doi.org/10.1103/physreva.96.023839
Cite the original work for its findings. Save a collection to share your selection of sources.