The Astrophysical Journal (Jan 2023)

Inflationary and Phase-transitional Primordial Magnetic Fields in Galaxy Clusters

  • Salome Mtchedlidze,
  • Paola Domínguez-Fernández,
  • Xiaolong Du,
  • Wolfram Schmidt,
  • Axel Brandenburg,
  • Jens Niemeyer,
  • Tina Kahniashvili

DOI
https://doi.org/10.3847/1538-4357/acb04d
Journal volume & issue
Vol. 944, no. 1
p. 100

Abstract

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Primordial magnetic fields (PMFs) are possible candidates for explaining the observed magnetic fields in galaxy clusters. Two competing scenarios of primordial magnetogenesis have been discussed in the literature: inflationary and phase-transitional. We study the amplification of both large- and small-scale correlated magnetic fields, corresponding to inflation- and phase transition–generated PMFs, in a massive galaxy cluster. We employ high-resolution magnetohydrodynamic cosmological zoom-in simulations to resolve the turbulent motions in the intracluster medium. We find that the turbulent amplification is more efficient for the large-scale inflationary models, while the phase transition–generated seed fields show moderate growth. The differences between the models are imprinted on the spectral characteristics of the field (such as the amplitude and the shape of the magnetic power spectrum) and therefore also on the final correlation length. We find a one order of magnitude difference between the final strengths of the inflation- and phase transition–generated magnetic fields, and a factor of 1.5 difference between their final coherence scales. Thus, the final configuration of the magnetic field retains information about the PMF generation scenarios. Our findings have implications for future extragalactic Faraday rotation surveys with the possibility of distinguishing between different magnetogenesis scenarios.

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