Fate of an impurity strongly interacting with a thermal Bose gas

We spectroscopically study mobile impurities immersed in a homogeneous bosonic bath (a box-trapped Bose gas), varying the bath temperature and the strength of impurity-bath interactions. We compare our results to those for a quasipure Bose–Einstein condensate (BEC), and find that for strong impurity-bath interactions, the spectra narrow with increasing temperature, while the impurity energy shift is suppressed. Near the critical temperature for condensation, many-body effects still play an important role, and only for a nondegenerate bath the system approaches the classical Boltzmann-gas behavior. The key spectral features are reproduced within the theory of the ideal Bose polaron.

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Publication Details

Journal
Apollo
Published
2026-09-29
DOI
https://doi.org/10.17863/cam.134979
Primary Topic
Cold Atom Physics and Bose-Einstein Condensates
Type
article
Field-Weighted Citation Impact
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Fate of an impurity strongly interacting with a thermal Bose gas

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Apollo
Cold Atom Physics and Bose-Einstein Condensates
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Fate of an impurity strongly interacting with a thermal Bose gas

Tilman Enss, Zoran Hadzibabic, Sebastian J. Morris, Christoph Eigen, Jiří Etrych, Gevorg Martirosyan, C. J. Ho, Moritz Drescher, Manfred Salmhofer, Simon M. Fischer
article en

Abstract

We spectroscopically study mobile impurities immersed in a homogeneous bosonic bath (a box-trapped Bose gas), varying the bath temperature and the strength of impurity-bath interactions. We compare our results to those for a quasipure Bose–Einstein condensate (BEC), and find that for strong impurity-bath interactions, the spectra narrow with increasing temperature, while the impurity energy shift is suppressed. Near the critical temperature for condensation, many-body effects still play an important role, and only for a nondegenerate bath the system approaches the classical Boltzmann-gas behavior. The key spectral features are reproduced within the theory of the ideal Bose polaron.

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Cold Atom Physics and Bose-Einstein Condensates
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