Ultradilute Quantum Liquid of Dipolar Atoms in a Bilayer

G. Guijarro, G. E. Astrakharchik, and J. Boronat
Phys. Rev. Lett. 128, 063401 – Published 9 February 2022
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Abstract

We show that ultradilute quantum liquids can be formed with ultracold bosonic dipolar atoms in a bilayer geometry. Contrary to previous realizations of ultradilute liquids, there is no need for stabilizing the system with an additional repulsive short-range potential. The advantage of the proposed system is that dipolar interactions on their own are sufficient for creation of a self-bound state and no additional short-range potential is needed for the stabilization. We perform quantum Monte Carlo simulations and find a rich ground-state phase diagram that contains quantum phase transitions between liquid, solid, atomic gas, and molecular gas phases. The stabilization mechanism of the liquid phase is consistent with the microscopic scenario in which the effective dimer-dimer attraction is balanced by an effective three-dimer repulsion. The equilibrium density of the liquid, which is extremely small, can be controlled by the interlayer distance. From the equation of state, we extract the spinodal density, below which the homogeneous system breaks into droplets. Our results offer a new example of a two-dimensional interacting dipolar liquid in a clean and highly controllable setup.

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  • Received 27 May 2021
  • Revised 7 October 2021
  • Accepted 3 January 2022

DOI:https://doi.org/10.1103/PhysRevLett.128.063401

© 2022 American Physical Society

Physics Subject Headings (PhySH)

  1. Research Areas
Atomic, Molecular & Optical

Authors & Affiliations

G. Guijarro, G. E. Astrakharchik, and J. Boronat

  • Departament de Física, Campus Nord B4-B5, Universitat Politécnica de Catalunya, E-08034 Barcelona, Spain

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Issue

Vol. 128, Iss. 6 — 11 February 2022

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