Prospects for probing dark matter with filamentary 21cm emission
astro-ph.CO, astro-ph.GA
Submitted: 2026-09-03
Updated: 2026-09-03
Comments: 12 pages, 4 figures, accepted for publication in Research in Astronomy and Astrophysics
License: http://creativecommons.org/licenses/by/4.0/
The gist: The cosmic web contains most of the matter in the Universe, and its filamentary structure is closely related to the properties of dark matter.
Terminology
Abstract
The cosmic web contains most of the matter in the Universe, and its filamentary structure is closely related to the properties of dark matter. Compared with the cold dark matter (CDM) model, warm dark matter (WDM) suppresses the formation of low-mass halos and produces smoother cosmic filaments. In this work, we explore whether filamentary 21cm emission can be used to distinguish between these two dark matter models at z=4 and 2.5. We generate intrinsic 21cm brightness temperature maps from cosmological hydrodynamical simulations and produce mock observations by convolving them with Gaussian beams of different angular resolutions. We then compare the predicted filament signals with the expected sensitivities of SKA1-Low and SKA2-Low. We find that the intrinsic 21cm emission clearly reflects the different filament morphologies in the CDM and WDM models, particularly at z=4. However, these differences rapidly disappear as the beam size increases, especially for beam sizes larger than 6 arcsec. Although larger beams improve the observational sensitivity, they also erase the small-scale structures that encode the dark matter information. As a result, neither SKA1-Low nor the planned SKA2-Low can directly resolve individual filaments with sufficient sensitivity to distinguish between the two models. We therefore conclude that direct imaging of cosmic filaments and constraining dark matter through their morphology are unlikely to be feasible with current and planned SKA-Low facilities.
Sources
- Anticipated Performance of the Square Kilometre Array -- Phase 1 (SKA1)
- Modelling the uv/x-ray cosmic background with CUBA
- Distinguishing the nature of dark matter by mapping cosmic filaments from Lyman-alpha emission
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