Persistent radio sources associated with fast radio bursts: Implications from magnetar progenitors
Abstract
The rare association of three persistent radio sources (confirmed PRS1 and PRS2, candidate PRS3) with repeating fast radio bursts (FRB 20121102A, 20190520B, 20201124A) offers a unique probe into their magneto-ionic environments. PRSs are attributed to synchrotron emission from relativistic charged particles of magnetar wind nebula (MWN) powered by spin-down magnetohydrodynamic wind or internal magnetic field decay. Using a multizone hydrodynamic model, we track MWN evolution to constrain magnetar progenitor properties. For PRS1 and PRS2, we find an equipartition radius pc that is consistent with the radio scintillation estimates ( pc) and radio imaging limits ( pc). This compact size favors low expansion speeds and large initial spin periods, ms, ruling out millisecond magnetar progenitors. Given ms, a current size of pc, a supernova kinetic energy erg and an ejecta mass , the PRS age is yr. PRSs with years require an internal field (G) with a decay timescale yr. The slowest field decay ( yr) favors sub-energetic supernovae ( erg) with massive ejecta () and low ionization fraction (). For the sub-energetic scenario for the confirmed PRSs, we predict a cooling break at gigahertz at and self-absorption near 200 megahertz at . For PRS3, a rotation-powered MWN is viable only if yr; an inverted spectrum beyond 150 gigahertz would rule out this scenario.
Cite
@article{arxiv.2504.01125,
title = {Persistent radio sources associated with fast radio bursts: Implications from magnetar progenitors},
author = {Sk. Minhajur Rahaman and Sandeep Kumar Acharya and Paz Beniamini and Jonathan Granot},
journal= {arXiv preprint arXiv:2504.01125},
year = {2025}
}
Comments
Accepted for publication in ApJ