Stellar limits on scalars from electron-nucleus bremsstrahlung
arXiv:2303.00778 · doi:10.1088/1475-7516/2023/07/071
Abstract
We revisit stellar energy-loss bounds on the Yukawa couplings of baryophilic and leptophilic scalars . The white-dwarf luminosity function yields and , based on bremsstrahlung from and collisions with electrons. In models with a Higgs portal, this also implies a bound on the scalar-Higgs mixing angle . Our new bounds apply for and are among the most restrictive ones, whereas for long-range force measurements dominate. Besides a detailed calculation of the bremsstrahlung rate for degenerate and semi-relativistic electrons, we prove with a simple argument that non-relativistic bremsstrahlung by the heavy partner is suppressed relative to that by the light one by their squared-mass ratio. This large reduction was overlooked in previous much stronger bounds on . In an Appendix, we provide fitting formulas (few percent precision) for the bremsstrahlung emission of baryophilic and leptophilic scalars as well as axions for white-dwarf conditions, i.e., degenerate, semi-relativistic electrons and ion-ion correlations in the ``liquid'' phase.
22 pages + appendices, 7 figures. Matches the published version
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