Quantum vortex dipole as a probe of the normal component distribution

Fuente: arXiv
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Main Authors: Barresi, Andrea, Magierski, Piotr, Wlazłowski, Gabriel
Format: Preprint
Published: 2025
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author Barresi, Andrea
Magierski, Piotr
Wlazłowski, Gabriel
author_facet Barresi, Andrea
Magierski, Piotr
Wlazłowski, Gabriel
contents We investigate the dynamics of quantum vortex dipoles in a strongly interacting, spin-imbalanced Fermi superfluid at zero temperature. Using fully microscopic time-dependent density functional theory, we demonstrate that the dipole trajectory is strongly influenced by the spatial distribution of spin polarization. The resulting forces on the vortices include both longitudinal and transverse components, leading to deflection and shrinking of the dipole during propagation. For moderate polarization, vortex dipoles are deflected and lose energy, while for larger imbalances, they are rapidly annihilated. Our findings provide compelling evidence that spin-imbalanced Fermi gases contain a spatially nonuniform normal component even at zero temperature. We show that vortex dipoles serve as sensitive probes of this component, offering a route to indirectly detect exotic superfluid phases such as the Fulde-Ferrell-Larkin-Ovchinnikov state and related inhomogeneous condensates.
format Preprint
id arxiv_https___arxiv_org_abs_2507_05817
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum vortex dipole as a probe of the normal component distribution
Barresi, Andrea
Magierski, Piotr
Wlazłowski, Gabriel
Quantum Gases
We investigate the dynamics of quantum vortex dipoles in a strongly interacting, spin-imbalanced Fermi superfluid at zero temperature. Using fully microscopic time-dependent density functional theory, we demonstrate that the dipole trajectory is strongly influenced by the spatial distribution of spin polarization. The resulting forces on the vortices include both longitudinal and transverse components, leading to deflection and shrinking of the dipole during propagation. For moderate polarization, vortex dipoles are deflected and lose energy, while for larger imbalances, they are rapidly annihilated. Our findings provide compelling evidence that spin-imbalanced Fermi gases contain a spatially nonuniform normal component even at zero temperature. We show that vortex dipoles serve as sensitive probes of this component, offering a route to indirectly detect exotic superfluid phases such as the Fulde-Ferrell-Larkin-Ovchinnikov state and related inhomogeneous condensates.
title Quantum vortex dipole as a probe of the normal component distribution
topic Quantum Gases
url https://arxiv.org/abs/2507.05817