
TL;DR
This study uses neutron star cooling data to constrain axion properties, providing new limits on axion mass and coupling by incorporating axion emission processes into cooling models and comparing with observational data.
Contribution
It introduces a comprehensive simulation framework for axion cooling in neutron stars and derives new bounds on axion parameters based on observational constraints.
Findings
Axion coupling limited to $f_a/10^{7}\textrm{GeV} \ge (5$--$10)$.
Upper bound on axion mass $m_a \le (0.06$--$0.12)~\textrm{eV}$.
Constraints derived for hadronic axion models.
Abstract
Cooling simulations of neutron stars and their comparison with the data from thermally emitting x-ray sources put constraints on the properties of axions, and by extension of any light pseudoscalar dark matter particles, whose existence has been postulated to solve the strong-CP problem of QCD. We incorporate the axion emission by pair-breaking and formation processes by - and -wave nucleonic condensates in a benchmark code for cooling simulations as well as provide fit formulas for the rates of these processes. Axion cooling of neutron stars has been simulated for 24 models covering the mass range 1 to 1.8 solar masses, featuring nonaccreted iron and accreted light-element envelopes, and a range of nucleon-axion couplings. The models are based on an equation state predicting conservative physics of superdense nuclear matter that does not allow for the onset of fast cooling…
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