A fresh look at linear cosmological constraints on a decaying dark matter component
Vivian Poulin, Pasquale D. Serpico, Julien Lesgourgues

TL;DR
This paper derives new constraints on decaying dark matter using CMB and large-scale structure data, correcting previous theoretical errors and exploring implications for cosmological tensions.
Contribution
It provides a corrected derivation of the Boltzmann hierarchy for decaying dark matter and establishes new, tighter gravitational bounds on decay parameters.
Findings
No more than 3.8% of DM decayed since recombination (95% CL)
Bounds on decay parameters depend on data sets, with the tightest at $f ext{Gamma} < 5.9\times10^{-3}$ Gyr$^{-1}$
Degeneracies with neutrinos are broken by large-scale structure data.
Abstract
We consider a cosmological model in which a fraction of the Dark Matter (DM) is allowed to decay in an invisible relativistic component, and compute the resulting constraints on both the decay width (or inverse lifetime) and from purely gravitational arguments. We report a full derivation of the Boltzmann hierarchy, correcting a mistake in previous literature, and compute the impact of the decay --as a function of the lifetime-- on the CMB and matter power spectra. From CMB only, we obtain that no more than 3.8 % of the DM could have decayed in the time between recombination and today (all bounds quoted at 95 % CL). We also comment on the important application of this bound to the case where primordial black holes constitute DM, a scenario notoriously difficult to constrain. For lifetimes longer than the age of the Universe, the bounds can be cast as $f\Gamma <…
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