Logo image
Turbulence in Quantum Gases: Vortices, Waves, and Cascades
Preprint   Open access

Turbulence in Quantum Gases: Vortices, Waves, and Cascades

Ashton S Bradley, Tyler W Neely, Xiaoquan Yu and Brian P Anderson
arXiv.org
openRxiv
24/07/2026
Handle:
https://hdl.handle.net/10523/51996

Abstract

Physics - Atomic Physics Physics - Quantum Gases Physics - Quantum Physics
We review turbulence in ultracold quantum gases, using the scalar contact-interaction Bose-Einstein condensate as the reference system for quantized circulation, compressibility, vortices, sound, and cascades. We focus on the quantitative diagnostics that connect helium and classical phenomenology to microscopic wave-function dynamics: incompressible and compressible kinetic-energy spectra, wave-occupation spectra, spectral fluxes, vortex-resolved correlations, and velocity statistics. These diagnostics distinguish equilibrium vortex organization, decaying turbulent relaxation, forced cascade dynamics, and weak-wave turbulence, and show why power laws alone are insufficient evidence for a cascade. We survey experiments on two-dimensional Onsager clustering, three-dimensional vortex-line turbulence, box-trap wave cascades, engineered dissipation, and turbulent equations of state. We close by briefly placing the contact-interaction scalar superfluid system in a broader landscape of nonlocal, multicomponent, fermionic, and driven-dissipative quantum fluids, where turbulence concepts can be tested for universality.
url
https://doi.org/10.48550/arXiv.2607.22244View
Preprint (Author's original) Open All Rights Reserved

Metrics

1 Record Views

Details

Logo image