Probing the Fundamental Nature of Particle Dark Matter
Marco Regis, Aritra Basu, Geoff Beck, Gianni Bernardi, Paolo Marchegiani, Dominik J. Schwarz, Marco Taoso, Elisa Todarello, Emma Tolley, Cora Uhlemann
astro-ph.CO, hep-ph
Submitted: 2026-06-24
Comments: 25 pages, 7 figures. Published in Advancing Astrophysics with the SKA II (AASKAII), 2026 (arXiv:2606.20366). Report-no: AASKAII/Regis01
Project page: https://cajohare.github.io/AxionLimits
License: http://creativecommons.org/licenses/by-nc-sa/4.0/
The gist: Understanding the fundamental nature of dark matter (DM) is one of the most significant scientific challenges of our time.
Terminology
Abstract
Understanding the fundamental nature of dark matter (DM) is one of the most significant scientific challenges of our time. A compelling hypothesis is that DM consists of a new, yet-to-be-discovered particle. Among the leading candidates are weakly interacting massive particles (WIMPs) and axion-like particles (ALPs), both of which can be investigated using observations with the SKA telescopes. In this chapter, we review the search for particle DM through radio observations, summarizing the current state-of-the-art and presenting forecasts for the SKA-Low and SKA-Mid telescopes in the AA4 baseline design. Radio searches for WIMPs focus on detecting synchrotron radiation originating from the products of DM annihilation using continuum observations. Competitive constraints on sub-TeV WIMPs have already been derived using SKA precursors looking at dwarf galaxies, galaxy clusters, and the Large Magellanic Cloud. We discuss how the superior continuum sensitivity of the SKA telescopes will allow us to progressively close in on the WIMP parameter space. The ALP signal arises from its decay or conversion into photon(s), which typically consists of a nearly monochromatic signature, and from rotation of polarization angles of photons interacting with ALPs. We demonstrate how the spectral resolution, line sensitivity, and polarimetry of the SKA AA4 telescopes can be leveraged to constrain the ALP-photon coupling.
Sources
- Dark Matter
- Constraining Axion-like Particles through Multi-epoch Monitoring of Strong Gravitational Lenses
- The Dark Photon
- Axion Gegenschein: Probing Back-scattering of Astrophysical Radio Sources Induced by Dark Matter
- The Cherenkov Telescope Array
- Green Bank Telescope Constraints on Dark Matter Annihilation in Segue I
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