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Phase diagram of incoherently driven strongly correlated photonic lattices

Academic Article
Publication Date:
2017
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 intercavity 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.
Iris type:
01.01 Articolo in rivista
Keywords:
Nonlinear optics; Optical lattices; Photonics; Photons
List of contributors:
Fazio, Rosario; Rossini, Davide; Biella, Alberto
Authors of the University:
BIELLA ALBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/330351
Published in:
PHYSICAL REVIEW. A
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