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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Dr Anton Sokolov

Postdoctoral Research Assistant

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Particle theory
anton.sokolov@physics.ox.ac.uk
Telephone: 01865 273972
Rudolf Peierls Centre for Theoretical Physics, room 40.06
  • About
  • Publications

Supernova bounds on new scalars from resonant and soft emission

Journal of High Energy Physics Springer 2025:4 (2025) 13

Authors:

Edward Hardy, Anton Sokolov, Henry Stubbs

Abstract:

We study supernova cooling constraints on new light scalars that mix with the Higgs, couple only to nucleons, or couple only to leptons. We show that in all these cases scalars with masses smaller than the plasma frequency in the supernova core are efficiently produced by resonant mixing with the in-medium longitudinal degree of freedom of the photon. The resulting bounds are free from uncertainties associated to the rate of emission of the scalar in nucleon-nucleon scatterings, which would otherwise badly affect the Higgs-mixed and nucleophilic scenarios. Heavier scalars that mix with the Higgs or couple only to nucleons are mostly produced by nucleon bremsstrahlung, and we obtain a conservative approximation for the corresponding rate using a soft theorem. We also analyse the impact of different supernova profiles, nucleon degeneracy, trapping and scalar decays on the constraints.
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Searching for GUT-scale QCD axions and monopoles with a high-voltage capacitor

Physical Review D American Physical Society (APS) 108:3 (2023) 035024

Authors:

Michael E Tobar, Anton V Sokolov, Andreas Ringwald, Maxim Goryachev
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Photophilic hadronic axion from heavy magnetic monopoles

Journal of High Energy Physics Springer Science and Business Media LLC 2021:6 (2021) 123

Authors:

Anton V Sokolov, Andreas Ringwald

Abstract:

Abstract We propose a model for the QCD axion which is realized through a coupling of the Peccei-Quinn scalar field to magnetically charged fermions at high energies. We show that the axion of this model solves the strong CP problem and then integrate out heavy magnetic monopoles using the Schwinger proper time method. We find that the model discussed yields axion couplings to the Standard Model which are drastically different from the ones calculated within the KSVZ/DFSZ-type models, so that large part of the corresponding parameter space can be probed by various projected experiments. Moreover, the axion we introduce is consistent with the astrophysical hints suggested both by anomalous TeV-transparency of the Universe and by excessive cooling of horizontal branch stars in globular clusters. We argue that the leading term for the cosmic axion abundance is not changed compared to the conventional pre-inflationary QCD axion case for axion decay constant fa> 1012 GeV.
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Generic energy transport solutions to the solar abundance problem — a hint of new physics

JCAP 03 (2020) 013

Authors:

Anton V. Sokolov

Abstract:

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Stellar cooling limits on KK gravitons and dark dimensions

Journal of High Energy Physics Springer 2026:3 (2026) 29

Authors:

Edward Hardy, Anton Sokolov, Henry Stubbs

Abstract:

We revisit cooling bounds on light Kaluza-Klein (KK) gravitons, as arise in the dark dimension scenario, considering globular clusters, neutron stars, and supernovae. In addition to bremsstrahlung, we account for two novel production channels: resonant mixing with the in-medium photon and a pion-induced process in supernovae. The strongest limits arise from SN 1987A, with the emissivity from the pion process exceeding that from bremsstrahlung by a factor of a few albeit with substantial uncertainties, while resonant production is heavily suppressed. We obtain a bound on the KK mass scale of mKK ≳ 0.6 eV (≳ 500 eV) for 2 (3) extra dimensions, which, having accounted for these previously neglected processes, is broadly compatible with existing analyses. Improved understanding of the properties of pions in supernovae could strengthen these limits to roughly eV (keV). For 1 extra dimension, the bounds are weaker than those from laboratory searches. We also show that constraints from KK graviton decays to Standard Model particles are less stringent than the cooling bounds if there is KK number violation at the level typically assumed in the dark dimension scenario, although these bounds could be strengthened by future observations.
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