SKAO and Gamma-Ray Synergies
Gianluca Castignani, Gavin Rowell, Arnau Aguasca-Cabot, Gemma E. Anderson, Csaba Balazs, Pol Bordas, Andrea Botteon, Jess W. Broderick, Gianfranco Brunetti, Ettore Carretti, Roland M. Crocker, Shi Dai, Filippo D'Ammando, Philip G. Edwards, Sabrina Einecke, Miroslav D. Filipovic, Marcello Giroletti, Adelle J. Goodwin, James A. Green, Sanja Lazarevic, Giulia Migliori, Monica Orienti, Josep M. Paredes, Elena Pian, Alak Ray, Lauren Rhodes, Zachary J. Smeaton, Nick Tothill, Martin White
astro-ph.HE, astro-ph.GA
Submitted: 2026-06-26
Comments: Published in Advancing Astrophysics with the SKA II (AASKAII), 2026 (arXiv:2606.20366). Report-no:AASKAII/Castignani01. Advancing Astrophysics with the SKA II (AASKAII) outlines the transformative scientific advances that will be enabled by the SKA telescopes
License: http://creativecommons.org/licenses/by-nc-sa/4.0/
The gist: A wide variety of Galactic and extragalactic sources are known to emitradiation across the entire electromagnetic spectrum, including both transient and steady-state phenomena.
Terminology
Abstract
A wide variety of Galactic and extragalactic sources are known to emitradiation across the entire electromagnetic spectrum, including both transient and steady-state phenomena. A few hundred of these sources (300) have been detected even at the highest energies, in the TeV range. The number of known TeV emitters is expected to increase substantially in the coming years with the operation of current and next-generation Cherenkov detectors, such as the Large High Altitude Air Shower Observatory (LHAASO) and the Cherenkov Telescope Array Observatory (CTAO). These sources typically exhibit broad, non-thermal, spectral energy distributions. Explaining such emission requires efficient particle acceleration mechanisms (e.g. Fermi processes, shock acceleration) and radiative processes involving magnetic fields (e.g. synchrotron and inverse Compton radiation), often accompanied by polarization signatures. However, the relative contribution of these emission mechanisms and the underlying physical processes are still debated. In this work, we present an overview of the scientific potential arising from the synergy between the Square Kilometre Array (SKA) and current and upcoming gamma-ray facilities. Combined observations across these energy bands will provide crucial insights into the physical mechanisms driving emission from GeV-TeV sources of both Galactic and extragalactic origin. These include transient events (e.g. gamma-ray bursts, supernovae, fast radio bursts, tidal disruption events, neutrino and gravitational-wave counterparts), variable sources (e.g. blazars, active galactic nuclei), and steady emitters (e.g. the Galactic centre, supernova remnants, radio galaxies, and galaxy clusters). We discuss the prospects for coordinated SKA-gamma-ray observations, including wide-field surveys, monitoring of variable sources, and target-of-opportunity follow-ups.
Sources
- The radio flare and multi-wavelength afterglow of the short GRB 231117A: energy injection from a violent shell collision
- The Peculiar Radio Evolution of the Tidal Disruption Event ASASSN-19bt
- Planetary Nebulae
- Possibilities for SETI at High Energy
- A newly born spider system at the core of a radio shell: Evidence for a low-energy supernova
- Ultrahigh-Energy Gamma-ray Emission Associated with Black Hole-Jet Systems
- Improved Constraints on Dark Matter Annihilation to a Line using Fermi-LAT observations of Galaxy Clusters
- Radio Searches of Fermi LAT Sources and Blind Search Pulsars: The Fermi Pulsar Search Consortium
- Science Prospects for the Southern Wide-field Gamma-ray Observatory: SWGO
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