Decaying warm dark matter revisited

Author:

Holm Emil Brinch,Tram Thomas,Hannestad Steen

Abstract

AbstractDecaying dark matter models provide a physically motivated way of channeling energy between the matter and radiation sectors. In principle, this could affect the predicted value of the Hubble constant in such a way as to accommodate the discrepancies between CMB inferences and local measurements of the same. Here, we revisit the model of warm dark matter decaying non-relativistically to invisible radiation. In particular, we rederive the background and perturbation equations starting from a decaying neutrino model and describe a new, computationally efficient method of computing the decay product perturbations up to large multipoles. We conduct MCMC analyses to constrain all three model parameters, for the first time including the mass of the decaying species, and assess the ability of the model to alleviate the Hubble andσ8tensions, the latter being the discrepancy between the CMB and weak gravitational lensing constraints on the amplitude of matter fluctuations on an 8h-1Mpc-1scale. We find that the model reduces theH0tension from ∼ 4σto ∼ 3σand neither alleviates nor worsens theS8σ8m/0.3)0.5tension, ultimately showing only mild improvements with respect to ΛCDM. However, the values of the model-specific parameters favoured by data is found to be well within the regime of relativistic decays where inverse processes are important, rendering a conclusive evaluation of the decaying warm dark matter model open to future work.

Publisher

IOP Publishing

Subject

Astronomy and Astrophysics

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Decaying Dark Matter and the Hubble Tension;Springer Series in Astrophysics and Cosmology;2024

2. P-wave Sommerfeld enhancement near threshold: a simplified approach;The European Physical Journal C;2023-10-18

3. Decaying Dark Matter and Lyman-α forest constraints;Journal of Cosmology and Astroparticle Physics;2023-10-01

4. Freeze-in dark matter via lepton portal: Hubble tension and stellar cooling;Journal of High Energy Physics;2023-09-26

5. Precision CMB constraints on eV-scale bosons coupled to neutrinos;The European Physical Journal C;2023-08-09

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