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3D Vortices and rotating solitons in ultralight dark matter

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arxiv 2502.12100 v2 pith:7P37TM73 submitted 2025-02-17 astro-ph.CO

3D Vortices and rotating solitons in ultralight dark matter

classification astro-ph.CO
keywords vortexlinesrotatingdensityprofilealigneddarkdynamically
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the formation and the dynamics of vortex lines in rotating scalar dark matter halos, focusing on models with quartic repulsive self-interactions. In the nonrelativistic regime, vortex lines and their lattices arise from the Gross-Pitaevskii equation of motion, as for superfluids and Bose-Einstein condensates studied in laboratory experiments. Indeed, in such systems vorticity is supported by the singularities of the phase of the scalar field, which leads to a discrete set of quantized vortices amid a curl-free velocity background. In the continuum limit where the number of vortex lines becomes very large, we find that the equilibrium solution is a rotating soliton that obeys a solid-body rotation, with an oblate density profile aligned with the direction of the total spin. This configuration is dynamically stable provided the rotational energy is smaller than the self-interaction and gravitational energies. Using numerical simulations in the Thomas-Fermi regime, with stochastic initial conditions for a spherical halo with a specific averaged density profile and angular momentum, we find that a rotating soliton always emerges dynamically, within a few dynamical times, and that a network of vortex lines aligned with the total spin fills its oblate profile. These vertical vortex lines form a regular lattice in the equatorial plane, in agreement with the analytical predictions of uniform vortex density and solid-body rotation. These vortex lines might further extend between halos to form the backbone of spinning cosmic filaments.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Repulsive dark matter from Hosotani mechanism

    astro-ph.CO 2026-07 conditional novelty 6.0

    Two Scherk-Schwarz-twisted fermions in a 5D gauge theory make the fifth-component dark matter scalar self-repel, yielding viable ultralight dark matter with mass 10⁻²¹–1 eV and astrophysical-size solitons.

  2. Vortex-reconnection energy bounds in Bose-Einstein-condensed and superfluid dark matter halos

    astro-ph.GA 2026-07 conditional novelty 6.0

    Vortex reconnections in BEC/superfluid dark matter halos produce dark-sector heating at a rate that is secular but sub-virial for relaxed non-interacting soliton cores, with the dominant uncertainty being the true vor...

  3. Vortex-reconnection energy bounds in Bose-Einstein-condensed and superfluid dark matter halos

    astro-ph.GA 2026-07 conditional novelty 5.0

    Vortex reconnections in BEC/superfluid dark-matter cores can transfer at most 0.06–4.5% of the virial energy in 10 Gyr under fiducial assumptions, so they cannot appreciably restructure the core.