A unified theory of strong coupling Bose polarons: From repulsive polarons to non-Gaussian many-body bound states
Nader Mostaan, Nathan Goldman, Fabian Grusdt

TL;DR
This paper develops a comprehensive variational framework to describe strong coupling Bose polarons, revealing a spectrum of metastable many-body bound states with non-Gaussian correlations, bridging the gap between attractive and repulsive polaron regimes.
Contribution
It introduces a novel variational approach combining Gaussian and non-Gaussian correlations to fully treat nonlinearities in Bose polarons near Feshbach resonances.
Findings
Discovery of a discrete set of metastable many-body bound states.
Identification of non-Gaussian quantum correlations in these states.
Prediction of sizable molecular spectral weights detectable via spectroscopy.
Abstract
We address the Bose polaron problem of a mobile impurity interacting strongly with a host Bose-Einstein condensate (BEC) through a Feshbach resonance. On the repulsive side at strong couplings, theoretical approaches predict two distinct polaron branches corresponding to attractive and repulsive polarons, but it remains unclear how the two are related. This is partly due to the challenges resulting from a competition of strongly attractive (destabilizing) impurity-boson interactions with weakly repulsive (stabilizing) boson-boson interactions, whose interplay is difficult to describe with contemporary theoretical methods. Here we develop a powerful variational framework that combines Gaussian correlations among impurity-boson scattering states, including up to an infinite number of bosonic excitations, with exact non-Gaussian correlations among bosons occupying an impurity-boson bound…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Strong Light-Matter Interactions · Spectroscopy and Laser Applications
