An SKA-Low RM Grid for constraining the origin of cosmic magnetism
astro-ph.CO, astro-ph.GA
Submitted: 2026-06-23
Updated: 2026-08-30
Comments: Published in Advancing Astrophysics with the SKA II (AASKAII), 2026 (arXiv:2606.20366). Report-no:AASKAII/OSullivan01
Code: https://github.com/nxdtxdyka/f150_ps_simulation
License: http://creativecommons.org/licenses/by-nc-sa/4.0/
The gist: Understanding the origin and evolution of cosmic magnetic fields is a key science goal for the SKAO.
Terminology
Abstract
Understanding the origin and evolution of cosmic magnetic fields is a key science goal for the SKAO. Recent advances in metre-wavelength (m- lambda) Faraday rotation measure (RM) grids are enabling precision probes of cosmic magnetism, with implications extending to early-Universe physics, AGN feedback, and the magnetized circumgalactic medium. Here we model the m- lambda polarized source counts to predict an RM Grid density with SKA-Low of N(>P) about 5 (P / 100 mu Jy)-0.75,, deg-2, where P is the polarized intensity detection threshold. This represents at least an order of magnitude improvement over the current state-of-the-art. For a representative wide-area SKA-Low AA4 survey covering 10,000 deg squared in about 3,200 hours, we predict more than 50,000 RMs. Coupled with an expected RM precision of about 0.05 rad/m squared, SKA-Low promises to produce the leading RM Grid survey for constraining the origin of cosmic magnetism in the SKA era. These predictions can be partially tested during the Science Verification phase using the AA* Sky Model data. For example, at a nominal detection threshold of 240 mu Jy/beam (8 times the noise in Stokes Q and U), we expect about 2.6 RMs/deg squared (5x the current best m- lambda RM Grid density). Combining both wide-area and all-sky data, SKA-Low could detect up to 100,000 m- lambda RMs across its observable sky. Finally, we demonstrate new constraints on the origin of cosmic magnetism by comparing cosmological MHD simulations with the LOFAR m- lambda RMs, and highlight the transformative advances an SKA-Low RM Grid will enable for precision studies of cosmic magnetism.
Sources
- Constraint on magnetized galactic outflows from LOFAR rotation measure data
- Probing magnetic fields in the circumgalactic medium using polarization data from MIGHTEE
- The Tiered Radio Extragalactic Continuum Simulation (T-RECS)
- The Tiered Radio Extragalactic Continuum (T-RECS) simulation II: HI emission and continuum-HI cross-correlation
- Probing intergalactic intergalactic magnetic fields with LOFAR LoTSS DR2 data
- AtLAST Science Overview Report
- Magnetic field strength in cosmic web filaments
- Magnetic field evolution in cosmic filaments with LOFAR data
- Discovery of a >13 Mpc long X-ray filament between two galaxy clusters beyond three times their virial radii
- The Polarisation Sky Survey of the Universe's Magnetism (POSSUM): Science Goals and Survey Description
- A Quick Look at the 3GHz Radio Sky. II. Hunting for DRAGNs in the VLA Sky Survey
- RG-CAT: Detection Pipeline and Catalogue of Radio Galaxies in the EMU Pilot Survey
- Simulations of ultra-high Energy Cosmic Rays in the local Universe and the origin of Cosmic Magnetic Fields
- The LOFAR Two-Metre Sky Survey (LoTSS): VI. Optical identifications for the second data release
- The Galactic Faraday rotation sky 2020
- Relieving the Hubble tension with primordial magnetic fields
- A low frequency study of linear polarization in radio galaxies
- Intergalactic medium rotation measure of primordial magnetic fields
- Universal profile for cosmic birefringence tomography with radio galaxies
- Evidence for strong extragalactic magnetic fields from Fermi observations of TeV blazars
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