English

Decaying Dark Matter Halo Abundance from a Revised Spherical Collapse Model

Cosmology and Nongalactic Astrophysics 2026-07-21 v1

Abstract

We present a semi-analytical framework for the halo mass function (HMF) in decaying dark matter (DDM) cosmologies, in which dark matter decays into a massive daughter particle inheriting a velocity kick vkv_k and a massless dark radiation component. Building on the Press-Schechter formalism, we encode the DDM physics through a spherical collapse model that explicitly tracks the decay-induced mass loss, yielding a modified, mass-dependent critical collapse threshold δc(M0)\delta_c(M_0) and a mapping Mcoll(M0)M_{\rm coll}(M_0) between the initial Lagrangian mass and the collapsed halo mass. The critical threshold exhibits a characteristic transition between two analytically tractable plateaus: a large-mass limit, where all daughter particles are retained by the halo, and a small-mass limit, where all daughters escape and the collapse is equivalent to that of a dark matter species decaying entirely into dark radiation, making δc\delta_c independent of M0M_0 and vkv_k. We provide semi-analytical results and fits for both limits and a fitting formula for the transition, whose single free parameter M1vk3Γ~1/2ttaM_1 \propto v_k^3\,\tilde\Gamma^{-1/2} t_{\rm ta} has a transparent physical interpretation: it is the mass scale at which the kick velocity equals the halo orbital velocity. We validate our predictions against a suite of N-body simulations at z=0z=0 and z1z\approx 1, finding good agreement across models spanning mild to strong HMF suppression relative to Λ\LambdaCDM. Residual deviations for the largest kick velocities at z=0z=0 are observed. Via a halo-by-halo comparison between simulations, we trace the discrepancy to the definition of the halo mass when daughter orbits extend beyond the halo boundary. The resulting fitting functions for δc(M0,Γ,vk)\delta_c(M_0,\Gamma,v_k) and Mcoll(M0)M_{\rm coll}(M_0) provide an efficient and accurate route to DDM constraints from current and forthcoming probes of the halo mass function.

Cite

@article{arxiv.2607.19244,
  title  = {Decaying Dark Matter Halo Abundance from a Revised Spherical Collapse Model},
  author = {Thomas Montandon and Vivian Poulin and Oliver Hahn and Jozef Bucko and Aurel Schneider},
  journal= {arXiv preprint arXiv:2607.19244},
  year   = {2026}
}

Comments

16 pages, 9 figures

R2 v1 2026-07-22T20:50:58.844Z