Spectral properties of coupled cavity arrays in one dimension
arXiv:0912.4459 · doi:10.1103/PhysRevB.81.104303
Abstract
Spectral properties of coupled cavity arrays in one dimension are investigated by means of the variational cluster approach. Coupled cavity arrays consist of two distinct "particles," namely, photons and atomiclike excitations. Spectral functions are evaluated and discussed for both particle types. In addition, densities of states, momentum distributions and spatial correlation functions are presented. Based on this information, polariton "quasiparticles" are introduced as appropriate, wave vector and filling dependent linear combinations of photon and atomiclike particles. Spectral functions and densities of states are evaluated for the polariton quasiparticles, and the weights of their components are analyzed.
17 pages, 16 figures, version as published
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- Equilibrium and Disorder-induced behavior in Quantum Light-Matter Systems
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- Polaritonic properties of the Jaynes-Cummings lattice model in two dimensions