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Open AccessJournal ArticleDOI

Quantum Monte Carlo study of the Bose-polaron problem in a one-dimensional gas with contact interactions

Luca Parisi, +1 more
- 21 Feb 2017 - 
- Vol. 95, Iss: 2, pp 023619
TLDR
In this paper, a theoretical study based on quantum Monte Carlo methods of the Bose polaron in one-dimensional systems with contact interactions is presented, where the ground-state energy of the impurity, its effective mass, and the contact parameter between the impurer and the bath are investigated.
Abstract
We present a theoretical study based upon quantum Monte Carlo methods of the Bose polaron in one-dimensional systems with contact interactions. In this instance of the problem of a single impurity immersed in a quantum bath, the medium is a Lieb-Liniger gas of bosons ranging from the weakly interacting to the Tonks-Girardeau regime, whereas the impurity is coupled to the bath via a different contact potential, producing both repulsive and attractive interactions. Both the case of a mobile impurity, having the same mass as the particles in the medium, and the case of a static impurity with infinite mass are considered. We make use of numerical techniques that allow us to calculate the ground-state energy of the impurity, its effective mass, and the contact parameter between the impurity and the bath. These quantities are investigated as a function of the strength of interactions between the impurity and the bath and within the bath. In particular, we find that the effective mass rapidly increases to very large values when the impurity gets strongly coupled to an otherwise weakly repulsive bath. This heavy impurity hardly moves within the medium, thereby realizing the ``self-localization'' regime of the Landau-Pekar polaron. Furthermore, we compare our results with predictions of perturbation theory valid for weak interactions and with exact solutions available when the bosons in the medium behave as impenetrable particles.

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Citations
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TL;DR: In this article, a detailed theoretical analysis of Bose polarons in one-dimensional systems of ultracold atoms is presented, combining a nonperturbative renormalization group approach with numerically exact diffusion Monte Carlo calculations.
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Bose–Einstein Condensation and Superfluidity

TL;DR: In this paper, an extended version of the notable work by the pioneering researchers Sandro Stringari and Lev Pitaevskii, which first appeared in 2003, is presented.
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Bose polarons in ultracold atoms in one dimension: beyond the Fr\"ohlich paradigm

TL;DR: In this paper, a detailed theoretical analysis of Bose polarons in one dimensional systems of ultracold atoms is presented, combining a nonperturbative renormalization group approach with numerically exact diffusion Monte Carlo calculations, and they obtain not only detailed numerical results over a broad range of parameters but also qualitative understanding of different regimes of the system.
Journal ArticleDOI

Coalescence of Two Impurities in a Trapped One-dimensional Bose Gas

TL;DR: In this paper, the ground state of a 1D trapped Bose gas with two mobile impurity particles is studied, and a variational procedure is developed in which the coordinates of the impurity particle are slow-like variables.
References
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Journal ArticleDOI

Bose–Einstein Condensation and Superfluidity

TL;DR: In this paper, an extended version of the notable work by the pioneering researchers Sandro Stringari and Lev Pitaevskii, which first appeared in 2003, is presented.
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