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Observation of Self-Bound Droplets of Ultracold Dipolar Molecules

Quantum Gases 2025-09-30 v2 Atomic and Molecular Clusters Atomic Physics Quantum Physics

Abstract

Ultracold gases of dipolar molecules have long been envisioned as a platform for the realization of novel quantum phases. Recent advances in collisional shielding, protecting molecules from inelastic losses, have enabled the creation of degenerate Fermi gases and, more recently, Bose-Einstein condensation of dipolar molecules. However, the observation of quantum phases in ultracold molecular gases that are driven by dipole-dipole interactions has so far remained elusive. In this work, we report the formation of self-bound droplets and droplet arrays in an ultracold gas of strongly dipolar sodium-cesium molecules. Starting from a molecular Bose-Einstein condensate (BEC), microwave dressing fields are used to induce dipole-dipole interactions with controllable strength and anisotropy. By varying the speed at which interactions are induced, covering a dynamic range of four orders of magnitude, we prepare droplets under equilibrium and non-equilibrium conditions, observing a transition from robust one-dimensional (1D) arrays to fluctuating two-dimensional (2D) structures. The droplets exhibit densities up to 100 times higher than the initial BEC, reaching the strongly interacting regime, and suggesting the possibility of a quantum-liquid or crystalline state. This work establishes ultracold molecules as a system for the exploration of strongly dipolar quantum matter and opens the door to the realization of self-organized crystal phases and dipolar spin liquids in optical lattices.

Keywords

Cite

@article{arxiv.2507.15208,
  title  = {Observation of Self-Bound Droplets of Ultracold Dipolar Molecules},
  author = {Siwei Zhang and Weijun Yuan and Niccolò Bigagli and Haneul Kwak and Tijs Karman and Ian Stevenson and Sebastian Will},
  journal= {arXiv preprint arXiv:2507.15208},
  year   = {2025}
}

Comments

16 pages, 11 figures