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Phases of a Bose-Einstein condensate of microwave-shielded dipolar molecules

Quantum Gases 2025-07-28 v1

Abstract

Bose-Einstein condensation of dipolar molecules can be achieved by shielding loss channels with microwave fields. The microwave coupling can be approximated by effective dipole-dipole interactions with a short-range repulsion. We study properties and stability of these molecular Bose gases with a many-body variational method, the hypernetted-chain Euler-Lagrange method for a wide range of densities and repulsion strengths of the microwave shield. We find a homogeneous gas-like phase which, however, is unstable at low density against density waves: at a critical density, which depends on the repulsion strength, the dipolar fluid undergoes a phase transition to a layer phase. Thus, if the molecular condensate is expanded adiabatically by decreasing the confinement strength, it will spontaneously form layers at the critical density. These quasi-two-dimensional layers can be self-bound, hence form two-dimensional liquids. By varying the microwave shield, the predicted equilibrium densities span more than an order of magnitude.

Keywords

Cite

@article{arxiv.2507.18986,
  title  = {Phases of a Bose-Einstein condensate of microwave-shielded dipolar molecules},
  author = {Chiara J. Polterauer and Robert E. Zillich},
  journal= {arXiv preprint arXiv:2507.18986},
  year   = {2025}
}

Comments

11 pages, 9 figures