The Astrophysics of Fast Radio Bursts
Alice P. Curtin, Marcin Gawroński, Jason Hessels, Clancy James, Fabian Jankowski, Franz Kirsten, Benito Marcote, Harry Qiu, Robert Reischke, Mawson W. Sammons, Laura G. Spitler, Ben Stappers, Amanda Weltman, The SKA Transients SWG
astro-ph.HE, astro-ph.CO
Submitted: 2026-06-25
Comments: Published in Advancing Astrophysics with the SKA II (AASKAII), 2026 (arXiv:2606.20366). Report-no:AASKAII/Curtin01
License: http://creativecommons.org/licenses/by/4.0/
The gist: Fast radio bursts (FRBs) provide a glimpse of high-energy astrophysical phenomena in other galaxies.
Terminology
Abstract
Fast radio bursts (FRBs) provide a glimpse of high-energy astrophysical phenomena in other galaxies. They point the way to extreme conditions that are currently undetectable by any other known means. These coherent radio flashes have timescales of microseconds to milliseconds, and inferred energies that are comparable to those of the most extreme bursts seen from Galactic neutron stars. However, the nature of FRB sources remains an open question in astrophysics. Magnetically powered neutron stars known as `magnetars' are a leading candidate for explaining the FRB phenomenon, but other plausible progenitors include magnetically interacting neutron-star binaries or accreting black holes. The diversity of FRB burst types and their galactic environments hint that multiple mechanisms and progenitor types may be responsible. Here we discuss the ways in which the SKA can uncover the nature of FRBs. In particular, we focus on the key advantages of the SKA: its Southern Hemisphere location and hence overlapping sky coverage with the Vera C. Rubin Observatory, its high sensitivity compared to existing wide-field FRB surveys, its fast search timescales down to tens of mu s, and its broad spectral coverage with bands from 50 MHz to 15 GHz. With these capabilities, the SKA will excel in detecting FRB sources across new frequency ranges and timescales. This will aid in a better understanding of the fundamental astrophysics behind FRBs, which will in turn also contribute to their use as cosmological probes, as explored in companion chapters.
Sources
- Constraining the Origin of FRB 20121102A's Persistent Radio Source with Long-Term Radio Observations
- Fast Radio Bursts from the Decay of Cosmic String Cusps
- A fast radio burst from the first 3 billion years of the Universe
- The Second CHIME/FRB Catalog of Fast Radio Bursts
- The Massive and Quiescent Elliptical Host Galaxy of the Repeating Fast Radio Burst FRB20240209A
- The DSA-2000 -- A Radio Survey Camera
- A broadband study of FRB20240114A with the Effelsberg 100-m radio telescope
- A milliarcsecond localization associates FRB 20190417A with a compact persistent radio source and an extreme magneto-ionic environment
- A HyperFlash and 'ECLAT view of the local environment and energetics of the repeating FRB 20240619D
- Localisation and host galaxy identification of new Fast Radio Bursts with MeerKAT
- Morphology of 137 Fast Radio Bursts down to Microseconds Timescales from The First CHIME/FRB Baseband Catalog
- A repeating fast radio burst source in the outskirts of a quiescent galaxy
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