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Thermal destabilization of self-bound ultradilute quantum droplets

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posted on 2024-07-11, 14:25 authored by Jia WangJia Wang, Hui HuHui Hu, Xiaji LiuXiaji Liu
We theoretically investigate the temperature effect in a Bose-Bose mixture with attractive inter-species interactions, in the regime where a self-bound ultradilute quantum droplet forms due to the subtle balance between the attractive mean-field force and the repulsive force provided by Lee-Huang-Yang quantum fluctuations. We find that in contrast to quantum fluctuations, thermal fluctuations destabilize the droplet state and completely destroy it above a threshold temperature. We show that the threshold temperature is determined by the intra-species interaction energy. For a three-dimensional Bose-Bose mixture, the threshold temperature is less than one-tenth of the Bose-Einstein condensation temperature under the typical experimental conditions. With increasing temperature, the droplet's equilibrium density gradually decreases and can be reduced by several tens of percent upon reaching the threshold temperature. We also consider a one-dimensional quantum droplet and find a similar destabilization effect due to thermal fluctuations. The threshold temperature in one dimension is roughly set by the binding energy of the inter-species dimer. The pronounced thermal instability of a self-bound quantum droplet predicted in our work could be examined in future experiments, by measuring the temperature dependence of its central density and observing its sudden disappearance at the threshold temperature.

Funding

ARC | DP180102018

Building Time Crystals with Ultracold Atoms : Australian Research Council (ARC) | DP190100815

Many-Body Localisation of Ultracold Fermionic Atoms in a Dirty Flat Land : Australian Research Council (ARC) | DP170104008

Many-body Localization Characterized from a Few-body Perspective : Australian Research Council (ARC) | DE180100592

Revealing universal exotic superfluidity with ultracold fermionic atoms : Australian Research Council (ARC) | DP180102018

History

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PDF (Published version)

ISSN

1367-2630

Journal title

New Journal of Physics

Volume

22

Issue

10

Article number

103044

Pagination

103044-

Publisher

IOP Publishing

Copyright statement

Copyright © 2020 the authors. Published version is available here under a Creative Commons Attribution 4.0 International License. https://creativecommons.org/licenses/by/4.0/

Language

eng

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