Beyond thermal approximations: Precise cosmological bounds on Axion-Like Particles
Nicola Barbieri, Luca Caloni, Martina Gerbino, Massimiliano Lattanzi, Luca Visinelli

TL;DR
This paper derives precise cosmological bounds on axion-like particles by solving their full phase-space distribution and analyzing their impact on cosmological observables, improving upon thermal approximation methods.
Contribution
It introduces a full phase-space Boltzmann treatment for ALP production, leading to more accurate cosmological bounds on ALP couplings and decay constants.
Findings
Stringent bounds on ALP decay constants for different couplings.
Constraints on ALP-photon coupling from CMB data.
Forecasts showing the importance of exact phase-space treatment for future experiments.
Abstract
We derive updated cosmological bounds on light axion-like particles (ALPs) coupled to leptons or photons, using a full phase-space treatment of their production from the primordial thermal plasma. The ALP phase-space distribution, obtained by solving the momentum-dependent Boltzmann equation for the relevant production processes, is consistently propagated into the computation of cosmological observables, allowing us to assess the impact of non-thermal spectral distortions on the effective number of relativistic species, . Using state-of-the-art measurements of the cosmic microwave background from Planck, the Atacama Cosmology Telescope, and the South Pole Telescope, complemented with Big Bang Nucleosynthesis determinations of primordial deuterium and helium abundances, we obtain the following 95\% credible limits on the ALP decay constant: $f_a > 1.63 \times 10^6 \,…
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Taxonomy
TopicsDark Matter and Cosmic Phenomena · Particle physics theoretical and experimental studies · Astrophysics and Cosmic Phenomena
