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Clumpiness of lens galaxies as a window on dark matter

Published online by Cambridge University Press:  04 March 2024

Dorota Bayer*
Affiliation:
Centre for Astrophysics & Supercomputing, Swinburne University of Technology, Hawthorn, Australia ARC Centre of Excellence for All Sky Astrophysics in 3 Dimensions (ASTRO 3D), Australia.
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Abstract

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While the direct detection of the dark-matter particle remains very challenging, the physical properties of dark matter could potentially be constrained indirectly – by comparing the population characteristics of substructures in real galaxies with predictions from the phenomenological dark-matter models, such as cold, warm or self-interacting dark matter. Whereas these models are practically indistinguishable with respect to the expected abundance and statistical properties of massive galactic substructures, the critical difference lies in the low-mass regime ≲ 108M. Galaxy-galaxy strong gravitational lensing provides a unique opportunity to search for gravitational signatures of such low-mass substructures in galaxies acting as a strong gravitational lens on a more distant background galaxy, serendipitously located along the same line of sight. In [Bayer et∼al.(2023)Bayer, Chatterjee, Koopmans, Vegetti, McKean, Treu, Fassnacht, and Glazebrook, Bayer et∼al.(2023)Bayer, Koopmans, McKean, Vegetti, Treu, Fassnacht, and Glazebrook, Bayer et∼al.(2023)Bayer, Vernardos, and Koopmans], we have recently introduced a novel approach to investigate the collective perturbative effect of low-mass substructures in the inner regions of massive elliptical lens galaxies and observationally constrain their power spectrum (on 1-10 kpc scales) based on the Fourier analysis of the associated surface-brightness anomalies in the lensed images (i.e., Einstein rings and gravitational arcs) observed with the Hubble Space Telescope. Here, we present a concise summary of the methodology, the encountered modelling challenges and the inferred observational constraints on the sub-galactic matter power spectrum. The future comparison of these results with predictions from hydrodynamical simulations might either verify the cold-dark-matter paradigm or require its substantial revision. Moreover, we demonstrate that the grid-based smooth lens modelling might model away surface-brightness anomalies caused by the presence of substructures in the lens galaxy and incorrectly interpret them as surface-brightness structure in the lensed background galaxy itself. If not properly understood and accounted for, such signal suppression might lead to severely biased constraints on the properties of substructures in galactic haloes.

Type
Contributed Paper
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2024. Published by Cambridge University Press on behalf of International Astronomical Union

References

Bayer, D., Chatterjee, S., Koopmans, L. V. E., Vegetti, S., McKean, J. P., Treu, T., Fassnacht, C. D., and Glazebrook, K.. Probing sub-galactic mass structure with the power spectrum of surface-brightness anomalies in high-resolution observations of galaxy-galaxy strong gravitational lenses. II. Observational constraints on the subgalactic matter power spectrum. MNRAS, 523 (1): 1310–1325, July 2023 a. doi: 10.1093/mnras/stad1402.Google Scholar
Bayer, D., Koopmans, L. V. E., McKean, J. P., Vegetti, S., Treu, T., Fassnacht, C. D., and Glazebrook, K.. Probing sub-galactic mass structure with the power spectrum of surface-brightness anomalies in high-resolution observations of galaxy-galaxy strong gravitational lenses - I. Power-spectrum measurement and feasibility study. MNRAS, 523 (1): 13261345, July 2023 b. doi: 10.1093/mnras/stad1403.CrossRefGoogle Scholar
Bayer, D., Vernardos, G., and Koopmans, L. V. E.. Probing sub-galactic mass structure with the power spectrum of surface-brightness anomalies in high-resolution observations of galaxy-galaxy strong gravitational lenses - III. Suppression of surface-brightness anomalies in grid-based lens modelling. MNRAS, 2023 c. doi: submitted.Google Scholar
Chatterjee, S. and Koopmans, L. V. E.. The inner mass power spectrum of galaxies using strong gravitational lensing: beyond linear approximation. MNRAS, 474: 17621772, February 2018. doi: 10.1093/mnras/stx2674.CrossRefGoogle Scholar
Koopmans, L. V. E.. Gravitational imaging of cold dark matter substructures. MNRAS, 363: 11361144, November 2005. doi: 10.1111/j.1365-2966.2005.09523.x.CrossRefGoogle Scholar
Vegetti, S. and Koopmans, L. V. E.. Bayesian strong gravitational-lens modelling on adaptive grids: objective detection of mass substructure in Galaxies. MNRAS, 392: 945963, January 2009. doi: 10.1111/j.1365-2966.2008.14005.x.CrossRefGoogle Scholar