Physical Realization of von Neumann Lattices in Rotating Dipole-blockaded Bose Gases
Szu-Cheng Cheng, Shih-Da Jheng

TL;DR
This paper develops a theoretical framework extending von Neumann lattices to describe vortex lattices with multiple-flux quanta in rotating dipole-blockaded Bose gases, confirmed by numerical simulations.
Contribution
The authors introduce a novel theory linking von Neumann lattices to physical vortex lattices with multiple flux quanta, expanding understanding of vortex matter in quantum gases.
Findings
Numerical simulations confirm vortex lattices as von Neumann lattice representations.
The theory describes vortex lattices with multiple-flux quanta.
Potential applications include modeling vortex structures in superfluid droplets.
Abstract
A mathematical lattice, called the von Neumann lattice, is a subset of coherent states and exists periodically in the phase space. It is unlike solids or Abrikosov lattices that are observable in physical systems. Abrikosov lattices are vortices closely packed into a lattice with a flux quantum through a unit cell. Although Abrikosov lattices appear generally in various physical systems, vortex lattices with multiple-flux quantums through a unit cell are more stable than Abrikosov lattices in some physical regimes of the systems with non-local interactions between particles. No theory is able to describe these vortex lattices today. Here, we develop a theory for these vortex lattices by extending von Neumann lattices to the coordinate space with a unit cell of area that is proportional to flux quantums through a unit cell. The von Neumann lattices not only show the same physical…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Physics of Superconductivity and Magnetism · Quantum, superfluid, helium dynamics
