Simeon Simjanovski, Guillaume Gauthier, Matthew J. Davis, Halina Rubinsztein-Dunlop, and Tyler W. Neely, Phys. Rev. A 111, 023314 – Published 12 February 2025

We study the creation and breakdown of a quantized vortex shear layer forming between a stationary Bose-Einstein condensate and a stirred-in persistent current. Once turbulence is established, we characterize the progressive clustering of the vortices, showing that the cluster number follows a power law decay with time, similar to decaying turbulence in other two-dimensional systems. Numerical study of the system demonstrates good agreement of the experimental data with a point vortex model that includes damping and noise. With increasing vortex number in the computational model, we observe a convergence of the power-law exponent to a fixed value.

https://doi.org/10.1103/PhysRevA.111.023314

Previous
Previous

Emergent Universal Drag Law in a Model of Superflow

Next
Next

Optimizing persistent currents in a ring-shaped Bose-Einstein condensate using machine learning