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Light-matter interactions in synthetic magnetic fields: Landau-photon polaritons
arXiv
Authors: Daniele De Bernardis, Ze-Pei Cian, Iacopo Carusotto, Mohammad Hafezi, Peter Rabl
Year
2020
Paper ID
20739
Status
Preprint
Abstract Read
~2 min
Abstract Words
117
Citations
N/A
Abstract
We study light-matter interactions in two dimensional photonic systems in the presence of a spatially homogeneous synthetic magnetic field for light. Specifically, we consider one or more two-level emitters located in the bulk region of the lattice, where for increasing magnetic field the photonic modes change from extended plane waves to circulating Landau levels. This change has a drastic effect on the resulting emitter-field dynamics, which becomes intrinsically non-Markovian and chiral, leading to the formation of strongly coupled Landau-photon polaritons. The peculiar dynamical and spectral properties of these quasi-particles can be probed with state-of-the-art photonic lattices in the optical and the microwave domain and may find various applications for the quantum simulation of strongly interacting topological models.
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- We study light-matter interactions in two dimensional photonic systems in the presence of a spatially homogeneous synthetic magnetic field for light.
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