Maintaining supersolidity in one and two dimensions

authored by
E. Poli, T. Bland, C. Politi, L. Klaus, M. A. Norcia, F. Ferlaino, R. N. Bisset, L. Santos
Abstract

We theoretically investigate supersolidity in three-dimensional dipolar Bose-Einstein condensates. We focus on the role of trap geometry in determining the dimensionality of the resulting droplet arrays, which range from one-dimensional to zigzag, through to two-dimensional supersolids in circular traps. Supersolidity is well established in one-dimensional arrays, and may be just as favorable in two-dimensional arrays provided that one appropriately scales the atom number to the trap volume. We develop a tractable variational model - which we benchmark against full numerical simulations - and use it to study droplet crystals and their excitations. We also outline how exotic ring and stripe states may be created with experimentally feasible parameters. Our work paves the way for future studies of two-dimensional dipolar supersolids in realistic settings.

Organisation(s)
Institute of Theoretical Physics
External Organisation(s)
University of Innsbruck
Österreichische Akademie der Wissenschaften
Type
Article
Journal
Physical Review A
Volume
104
ISSN
2469-9926
Publication date
09.12.2021
Publication status
Published
Peer reviewed
Yes
ASJC Scopus subject areas
Atomic and Molecular Physics, and Optics
Electronic version(s)
https://arxiv.org/abs/2108.02682 (Access: Open)
https://doi.org/10.1103/PhysRevA.104.063307 (Access: Closed)