The weak lensing radial acceleration relation: Constraining modified gravity and cold dark matter theories with KiDS-1000

Author:

Brouwer Margot M.ORCID,Oman Kyle A.ORCID,Valentijn Edwin A.ORCID,Bilicki MaciejORCID,Heymans Catherine,Hoekstra HenkORCID,Napolitano Nicola R.ORCID,Roy Nivya,Tortora CrescenzoORCID,Wright Angus H.ORCID,Asgari Marika,van den Busch Jan LucaORCID,Dvornik AndrejORCID,Erben Thomas,Giblin BenjaminORCID,Graham Alister W.ORCID,Hildebrandt HendrikORCID,Hopkins Andrew M.,Kannawadi ArunORCID,Kuijken KonradORCID,Liske Jochen,Shan HuanYuanORCID,Tröster TilmanORCID,Verlinde Erik,Visser ManusORCID

Abstract

We present measurements of the radial gravitational acceleration around isolated galaxies, comparing the expected gravitational acceleration given the baryonic matter (gbar) with the observed gravitational acceleration (gobs), using weak lensing measurements from the fourth data release of the Kilo-Degree Survey (KiDS-1000). These measurements extend the radial acceleration relation (RAR), traditionally measured using galaxy rotation curves, by 2 decades in gobs into the low-acceleration regime beyond the outskirts of the observable galaxy. We compare our RAR measurements to the predictions of two modified gravity (MG) theories: modified Newtonian dynamics and Verlinde’s emergent gravity (EG). We find that the measured relation between gobs and gbar agrees well with the MG predictions. In addition, we find a difference of at least 6σ between the RARs of early- and late-type galaxies (split by Sérsic index and u − r colour) with the same stellar mass. Current MG theories involve a gravity modification that is independent of other galaxy properties, which would be unable to explain this behaviour, although the EG theory is still limited to spherically symmetric static mass models. The difference might be explained if only the early-type galaxies have significant (Mgas ≈ M) circumgalactic gaseous haloes. The observed behaviour is also expected in Λ-cold dark matter (ΛCDM) models where the galaxy-to-halo mass relation depends on the galaxy formation history. We find that MICE, a ΛCDM simulation with hybrid halo occupation distribution modelling and abundance matching, reproduces the observed RAR but significantly differs from BAHAMAS, a hydrodynamical cosmological galaxy formation simulation. Our results are sensitive to the amount of circumgalactic gas; current observational constraints indicate that the resulting corrections are likely moderate. Measurements of the lensing RAR with future cosmological surveys (such as Euclid) will be able to further distinguish between MG and ΛCDM models if systematic uncertainties in the baryonic mass distribution around galaxies are reduced.

Funder

Deutsche Forschungsgemeinschaft

European Research Council

Nederlandse Onderzoekschool Voor Astronomie

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Science and Technology Facilities Council

Australian Research Council

Narodowe Centrum Nauki

 Ministerstwo Edukacji i Nauki

Max-Planck-Gesellschaft

Alexander von Humboldt-Stiftung

Bundesministerium für Bildung und Forschung

The Royal Society

National Natural Science Foundation of China

Shanghai Committee of Science and Technology

Key Research Program of Frontier Sciences

Swiss National Science Foundation

Canada Foundation for Innovation

Ontario Research Fund - Research Excellence

Publisher

EDP Sciences

Subject

Space and Planetary Science,Astronomy and Astrophysics

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