Microscopy of an ultranarrow Feshbach resonance using a laser-based atom collider: A quantum defect theory analysis
Abstract
We employ a quantum defect theory framework to provide a detailed analysis of the interplay between a magnetic Feshbach resonance and a shape resonance in cold collisions of ultracold atoms as captured in recent experiments using a laser-based collider [Phys. Rev. Research 3, 033209 (2021)]. By exerting control over a parameter space spanned by both collision energy and magnetic field, the width of a Feshbach resonance can be tuned over several orders of magnitude. We apply a quantum defect theory specialized for ultracold atomic collisions to fully describe of the experimental observations. While the width of a Feshbach resonance generally increases with collision energy, its coincidence with a shape resonance leads to a significant additional boost. By conducting experiments at a collision energy matching the shape resonance and using the shape resonance as a magnifying lens we demonstrate a feature broadening to a magnetic width of 8 G compared to a predicted Feshbach resonance width ~mG.
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Cite
@article{arxiv.2112.15416,
title = {Microscopy of an ultranarrow Feshbach resonance using a laser-based atom collider: A quantum defect theory analysis},
author = {Matthew Chilcott and James F. E. Croft and Ryan Thomas and Niels Kjærgaard},
journal= {arXiv preprint arXiv:2112.15416},
year = {2022}
}