Fermionization and collective excitations of 1D polariton lattices
Johannes Kn\"orzer, Rafa{\l} O{\l}dziejewski, Puneet A. Murthy, Ivan, Amelio

TL;DR
This paper theoretically shows how correlation and fermionization phenomena in a 1D exciton-polariton system can be observed with current technology, using analytical and numerical methods to identify different physical regimes.
Contribution
It introduces a theoretical framework connecting various regimes of exciton-polariton interactions and provides numerical predictions for observable signatures of fermionization.
Findings
Identification of Tonks-Girardeau, Tavis-Cummings, and mean-field regimes
Numerical calculation of ground-state energies and correlation functions
Observation of Friedel-like oscillations indicating fermionization
Abstract
We theoretically demonstrate that the hallmarks of correlation and fermionization in a one-dimensional exciton-polaritons gas can be observed with state-of-the-art technology. Our system consists of a chain of excitonic quantum dots coupled to a photonic waveguide, with a low filling of polaritons. We analytically identify the Tonks-Girardeau, Tavis-Cummings and mean-field limits and relate them to different regimes of the excitonic anharmonicity and photonic bandwidth. Using matrix-product states, we numerically calculate the ground-state energies, correlation functions and dynamic structure factor of the system. In particular, the latter has a finite weight in the Lieb-Liniger hole branch, and the density-density correlator displays Friedel-like oscillations for realistic parameters, which reveal the onset of fermionization close to the Tonks-Girardeau regime. Our work encourages…
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Taxonomy
TopicsStrong Light-Matter Interactions · Molecular Junctions and Nanostructures · Mechanical and Optical Resonators
