High Dispersion Measure Fast Radio Bursts from Young, Dust-Poor H II Regions

arXiv:2608.27779 · astro-ph.GA, astro-ph.HE, astro-ph.SR · Submitted 2026-08-27 · Read on arXiv

astro-ph.GA, astro-ph.HE, astro-ph.SR

Submitted: 2026-08-27

Updated: 2026-08-27

Comments: 32 pages, 9 figures, 1 table

License: http://creativecommons.org/licenses/by/4.0/

The gist: Several repeating fast radio burst (FRB) sources exhibit host-frame dispersion measure (DM) excesses far exceeding those expected from the interstellar medium in their host galaxies, implying a

Terminology

Abstract

Several repeating fast radio burst (FRB) sources exhibit host-frame dispersion measure (DM) excesses far exceeding those expected from the interstellar medium in their host galaxies, implying a substantial contribution from the sub-kiloparsec-scale local environment. These excesses are often attributed to an expanding supernova remnant; however, this canonical interpretation does not explain their apparent preference for low-metallicity dwarf galaxy hosts, suggesting that the mechanism producing the local DM is coupled to the properties of the host galaxy. In this work, we investigate whether the H II regions generated by young, massive stellar associations can simultaneously explain these DM excesses and their preferential association with low-metallicity dwarf galaxies. We develop a semi-analytic model for FRB-emitting neutron stars in cluster-forming molecular clouds and perform idealized one-dimensional radiation-hydrodynamic simulations using time-dependent ionizing luminosities from pySTARBURST99. Our findings indicate that high-mass (M about 10 5-10 6;M), young (10; Myr) stellar associations in low-metallicity environments (LMC-like or lower) can produce DM HII 10 cubed; pc;cm-3 for FRBs that form early (5 Myr) and remain embedded in the ionized gas. The low-mass/metallicity preference arises from dust: absorption of the Lyman continuum suppresses the ionized column at higher metallicity, making extreme local DMs preferentially generated in dust-poor, low-metallicity environments. At cosmological distances, selection of a metal-rich, massive, and quiescent host galaxy sample where such extreme local contributions are likely to be suppressed may yield a cleaner FRB sample for using extragalactic DMs as tracers of the intervening intergalactic and circumgalactic media.

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