The many faces of rotating quantum turbulence

Fuente: arXiv
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Main Authors: Estrada, Julian Amette, Brachet, Marc E., Mininni, Pablo D.
Format: Preprint
Published: 2025
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author Estrada, Julian Amette
Brachet, Marc E.
Mininni, Pablo D.
author_facet Estrada, Julian Amette
Brachet, Marc E.
Mininni, Pablo D.
contents Quantum turbulence shares many similarities with classical turbulence in the isotropic and homogeneous case, despite the inviscid and quantized nature of its vortices. However, when quantum fluids are subjected to rotation, their turbulent dynamics depart significantly from the classical expectations. We explore the phenomenology of rotating quantum turbulence, emphasizing how rotation introduces new regimes with no classical analogs. We review recent theoretical, experimental, and numerical developments, and present new numerical results that map out distinct dynamical regimes arising from the interplay of rotation, quantization, non-linearities, and condensed matter regimes. In particular, we show the importance of distinguishing the dynamics of rotating quantum fluids in the slowly rotating, rapidly rotating, and low Landau level regimes. The findings have implications for the dynamics of liquid helium, atomic Bose-Einstein condensates, and neutron stars, and show how rotating quantum fluids can serve as a unique platform bridging turbulence theory and condensed matter physics revealing novel states of out-of-equilibrium quantum matter.
format Preprint
id arxiv_https___arxiv_org_abs_2506_16358
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The many faces of rotating quantum turbulence
Estrada, Julian Amette
Brachet, Marc E.
Mininni, Pablo D.
Quantum Gases
Quantum turbulence shares many similarities with classical turbulence in the isotropic and homogeneous case, despite the inviscid and quantized nature of its vortices. However, when quantum fluids are subjected to rotation, their turbulent dynamics depart significantly from the classical expectations. We explore the phenomenology of rotating quantum turbulence, emphasizing how rotation introduces new regimes with no classical analogs. We review recent theoretical, experimental, and numerical developments, and present new numerical results that map out distinct dynamical regimes arising from the interplay of rotation, quantization, non-linearities, and condensed matter regimes. In particular, we show the importance of distinguishing the dynamics of rotating quantum fluids in the slowly rotating, rapidly rotating, and low Landau level regimes. The findings have implications for the dynamics of liquid helium, atomic Bose-Einstein condensates, and neutron stars, and show how rotating quantum fluids can serve as a unique platform bridging turbulence theory and condensed matter physics revealing novel states of out-of-equilibrium quantum matter.
title The many faces of rotating quantum turbulence
topic Quantum Gases
url https://arxiv.org/abs/2506.16358