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Production of Thermal Axions across the ElectroWeak Phase Transition

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arxiv 2012.04736 v1 pith:AYNUA3JA submitted 2020-12-08 hep-ph astro-ph.CO

Production of Thermal Axions across the ElectroWeak Phase Transition

classification hep-ph astro-ph.CO
keywords axionaxionscouplingsthermalacrosseffectiveelectroweakfuture
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Light axions can potentially leave a cosmic background, just like neutrinos. We complete the study of thermal axion production across the electroweak scale by providing a smooth and continuous treatment through the two phases. Focusing on both flavor conserving and violating couplings to third generation quarks, we compute the amount of axions produced via scatterings and decays of thermal bath particles. We perform a model independent analysis in terms of axion effective couplings, and we also make predictions for specific microscopic QCD axion scenarios. This observable effect, parameterized as it is conventional by an effective number of additional neutrinos, is above the $1\sigma$ sensitivity of future CMB-S4 surveys. Moreover, if one assumes no large hierarchies among dimensionless axion couplings to standard model particles, future axion helioscopes will provide a complementary probe for the parameter region we study.

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Cited by 3 Pith papers

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  1. Improved cosmological constraints on axion-lepton interactions

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    For axion masses above 0.1 eV, cosmology provides the strongest known limits on axion couplings to muons, taus, and flavor-violating tau channels, excluding decay constants up to 10^8 GeV.

  2. Flavor phenomenology of light dark particles

    hep-ph 2026-06 unverdicted novelty 2.0

    Review surveying limits and prospects for flavor-violating decays of light axion-like particles, highlighting complementarity of lab, astro, and cosmo probes up to 10^12 GeV scales.

  3. Axions at the meV Crossroads: Theory, Cosmology, Astrophysics, and Experiments

    hep-ph 2026-03 conditional novelty 2.0

    The meV axion window is presented as a coherent, cross-validated search program in which string theory, stellar cooling, dark matter, and new detector concepts converge on the same mass range.