English

Two-Dimensional Supersolid Formation in Dipolar Condensates

Quantum Gases 2022-05-17 v2

Abstract

Dipolar condensates have recently been coaxed to form the long-sought supersolid phase. While one-dimensional supersolids may be prepared by triggering a roton instability, we find that such a procedure in two dimensions (2D) leads to a loss of both global phase coherence and crystalline order. Unlike in 1D, the 2D roton modes have little in common with the supersolid configuration. We develop a finite-temperature stochastic Gross-Pitaevskii theory that includes beyond-mean-field effects to explore the formation process in 2D and find that evaporative cooling directly into the supersolid phase--hence bypassing the first-order roton instability--can produce a robust supersolid in a circular trap. Importantly, the resulting supersolid is stable at the final nonzero temperature. We then experimentally produce a 2D supersolid in a near-circular trap through such an evaporative procedure. Our work provides insight into the process of supersolid formation in 2D and defines a realistic path to the formation of large two-dimensional supersolid arrays.

Keywords

Cite

@article{arxiv.2107.06680,
  title  = {Two-Dimensional Supersolid Formation in Dipolar Condensates},
  author = {Thomas Bland and Elena Poli and Claudia Politi and Lauritz Klaus and Matthew A. Norcia and Francesca Ferlaino and Luis Santos and Russell N. Bisset},
  journal= {arXiv preprint arXiv:2107.06680},
  year   = {2022}
}

Comments

11 pages, 7 figures

R2 v1 2026-06-24T04:11:26.243Z