Flavor probes of axion-like particles
Martin Bauer, Matthias Neubert, Sophie Renner, Marvin Schnubel and, Andrea Thamm

TL;DR
This paper explores the phenomenology of axion-like particles with flavor-changing interactions, deriving bounds from various flavor observables and comparing them with collider and astrophysical constraints, highlighting the potential of meson decay searches.
Contribution
It provides a comprehensive analysis of flavor-changing effects of ALPs within a general effective field theory, including bounds on couplings and implications for experimental anomalies.
Findings
Meson decay searches set strong constraints on ALPs in the MeV-GeV range.
Flavor bounds are competitive with collider and astrophysical constraints.
ALPs could potentially explain certain experimental anomalies.
Abstract
Axions and axion-like particles (ALPs) are well-motivated low-energy relics of high-energy extensions of the Standard Model (SM). We investigate the phenomenology of an ALP with flavor-changing couplings, and present a comprehensive analysis of quark and lepton flavor-changing observables within a general ALP effective field theory. Observables studied include rare meson decays, flavor oscillations of neutral mesons, rare lepton decays, and dipole moments. We derive bounds on the general ALP couplings as a function of its mass, consistently taking into account the ALP lifetime and branching ratios. We further calculate quark flavor-changing effects that are unavoidably induced by running and matching between the new physics scale and the scale of the measurements. This allows us to derive bounds on benchmark ALP models in which only a single (flavorless or flavor-universal) ALP coupling…
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Taxonomy
TopicsDark Matter and Cosmic Phenomena · Particle physics theoretical and experimental studies · Computational Physics and Python Applications
