Microscopic theory of nonlinear phase space filling in polaritonic lattices
Kok Wee Song, Salvatore Chiavazzo, and Oleksandr Kyriienko

TL;DR
This paper develops a comprehensive microscopic theory for nonlinear phase space filling in strongly coupled polaritonic lattices, revealing new regimes and scaling laws that explain observed nonlinearities and guide future quantum polaritonics applications.
Contribution
It extends existing models by deriving nonlinear Rabi frequency scaling to saturation and analyzing the effects of lattice potential and Coulomb blockade on NPSF regimes.
Findings
Exponential decrease of Rabi frequency with exciton density in planar saturation.
Fast and slow NPSF regimes in fractured lattices influenced by Coulomb blockade.
Square-root saturation behavior in ultralocalized NPSF.
Abstract
We develop a full microscopic theory for a nonlinear phase space filling (NPSF) in strongly coupled two-dimensional polaritonic lattices. Ubiquitous in polaritonic experiments, the theoretical description of NPSF, remains limited to perturbative treatment and homogeneous samples. In this study, we go beyond the existing theoretical description and discover the broad scope of regimes where NPSF crucially modifies the optical response. Studying the quantum effects of non-bosonicity, cooperative light-matter coupling, and Coulomb blockade, we reveal several regimes for observing the nonlinear Rabi splitting quench due to the phase space filling. Unlike prior studies, we derive nonlinear Rabi frequency scaling all the way to the saturation limit and show that the presence of a lattice potential leads to qualitatively distinct nonlinearity. We concentrate on three regimes of NPSF: 1) planar;…
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Taxonomy
TopicsStrong Light-Matter Interactions · Mechanical and Optical Resonators · Thermal Radiation and Cooling Technologies
