English

Intergalactic medium rotation measure of primordial magnetic fields

Cosmology and Nongalactic Astrophysics 2024-12-10 v2 Astrophysics of Galaxies Space Physics

Abstract

The Faraday rotation effect, quantified by the Rotation Measure (RM), is a powerful probe of the large-scale magnetization of the Universe - tracing magnetic fields not only on galaxy and galaxy cluster scales but also in the intergalactic Medium (IGM; referred to as RMIGM\mathrm{RM}_{\text{IGM}}). The redshift dependence of the latter has extensively been explored with observations. It has also been shown that this relation can help to distinguish between different large-scale magnetization scenarios. We study the evolution of this RMIGM\mathrm{RM}_{\text{IGM}} for different primordial magnetogenesis scenarios to search for the imprints of primordial magnetic fields (PMFs; magnetic fields originating in the early Universe) on the redshift-dependence of RMIGM\mathrm{RM}_{\text{IGM}}. We use cosmological magnetohydrodynamic (MHD) simulations for evolving PMFs during large-scale structure formation, coupled to the light cone analysis to produce a realistic statistical sample of mock RMIGM\mathrm{RM}_{\text{IGM}} images. We study the predicted behavior for the cosmic evolution of RMIGM\mathrm{RM}_{\text{IGM}} for different correlation lengths of PMFs, and provide fitting functions for their dependence on redshifts. We compare these mock RM trends with the recent analysis of the the LOw-Frequency ARray (LOFAR) RM Grid and find that large-scale-correlated PMFs should have (comoving) strengths 0.75\lesssim 0.75 nanoGauss, if originated during inflation with the scale invariant spectrum and (comoving) correlation length 19\sim 19 cMpc/h or 30 \lesssim 30 nanoGauss if they originated during phase-transition epochs with the comoving correlation length 1\sim 1 cMpc/h. Our findings agree with previous observations and confirm the results of semi-analytical studies, showing that upper limits on the PMF strength decrease as their coherence scales increase.

Keywords

Cite

@article{arxiv.2406.16230,
  title  = {Intergalactic medium rotation measure of primordial magnetic fields},
  author = {Salome Mtchedlidze and Paola Domínguez-Fernández and Xiaolong Du and Ettore Carretti and Franco Vazza and Shane Patrick O'Sullivan and Axel Brandenburg and Tina Kahniashvili},
  journal= {arXiv preprint arXiv:2406.16230},
  year   = {2024}
}

Comments

18 pages, 11 figures, accepted in ApJ