Evolving ultralight scalars into non-linearity with Lagrangian perturbation theory

Author:

Laguë Alex123ORCID,Bond J Richard3,Hložek Renée12,Marsh David J E4,Söding Laurin5

Affiliation:

1. Department of Astronomy & Astrophysics, University of Toronto, 50 St George Street, Toronto, ON M5S 3H4, Canada

2. Dunlap Institute for Astronomy and Astrophysics, University of Toronto, 50 St George Street, Toronto, ON M5S 3H4, Canada

3. Canadian Institute for Theoretical Astrophysics, University of Toronto, 60 St George Street, Toronto, ON M5S 3H8, Canada

4. Institut fur Astrophysik, Georg-Agust Universitat, Friedrich-Hund-Platz 1, D-37077 Gottingen, Germany

5. Department of Physics and Astronomy, Universität Heidelberg, D-69120 Heidelberg, Germany

Abstract

ABSTRACT Many models of high energy physics suggest that the cosmological dark sector consists of not just one, but a spectrum of ultralight scalar particles with logarithmically distributed masses. To study the potential signatures of low concentrations of ultralight axion (also known as fuzzy) dark matter, we modify Lagrangian perturbation theory (LPT) by distinguishing between trajectories of different dark matter species. We further adapt LPT to include the effects of a quantum potential, which is necessary to generate correct initial conditions for ultralight axion simulations. Based on LPT, our modified scheme is extremely efficient on large scales and it can be extended to an arbitrary number of particle species at very little computational cost. This allows for computation of self-consistent initial conditions in mixed dark matter models. Additionally, we find that shell-crossing is delayed for ultralight particles and that the deformation tensor extracted from LPT can be used to identify the range of redshifts and scales for which the Madelung formalism of fuzzy dark matter can lead to divergences.

Funder

Natural Sciences and Engineering Research Council of Canada

Alexander von Humboldt Foundation

Federal Ministry of Education and Research

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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