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Detection of magnetic fields in superclusters of galaxies

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arxiv 2503.08765 v1 pith:C7XHSUV6 submitted 2025-03-11 astro-ph.CO astro-ph.GA

classification astro-ph.COastro-ph.GA
keywords magneticdensityfieldsuperclustersfilamentsscalesuperclusterfields
verification ladder T0 review T1 audit T2 compute T3 formal
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Magnetic fields in large scale structure filaments beyond galaxy clusters remain poorly understood. Superclusters offer a unique setting to study these low density environments, where weak signals make detection challenging. The Faraday rotation measure (RM) of polarized sources along supercluster lines of sight helps constrain magnetic field properties in these regions. This study aims to determine magnetic field intensity in low density environments within superclusters using RM measurements at different frequencies. We analyzed three nearby (z<0.1) superclusters, Corona Borealis, Hercules, and Leo, where polarization observations were available at 1.4 GHz and 144 MHz. Our catalogue includes 4497 polarized background sources with RM values from literature and unpublished 144 MHz data. We constructed 3D density cubes for each supercluster to estimate density at RM measurement locations. By grouping RM values into three density bins (outskirts, filaments, and nodes) we examined RM variance linked to mean density. We found an RM variance excess of 2.5 \pm 0.5 rad^2 m^{-4} between the lowest-density regions outside the supercluster and the low-density filamentary regions within. This suggests an intervening magnetic field in the supercluster filaments. Modeling the RM variance with a single scale, randomly oriented magnetic field, we constrained the line of sight magnetic field to B_{//} = 19^{+50}_{-8} nG after marginalizing over reversal scale and path length. Our findings align with previous studies of large scale structure filaments, suggesting that adiabatic compression alone (B_{||} \sim 2 nG) cannot fully explain the observed field strengths. Other amplification mechanisms likely contribute to the evolution of magnetic fields in superclusters.

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

  1. Radio Observations as a Probe of Cosmic Web Magnetism

    astro-ph.CO 2025-05 conditional novelty 6.0 of 10

    Radio observations of cosmic filaments favor a dominant primordial magnetic field over an astrophysical-only origin, with best-fit filament field 43 ± 7 nG at z=0.

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