Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 4.0 International license. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Open Access

Supernova production of axionlike particles coupling to electrons, reloaded

Damiano F. G. Fiorillo1, Tetyana Pitik2,3, and Edoardo Vitagliano4,5

Phys. Rev. D 112, 083008 – Published 3 October, 2025Erratum Phys. Rev. D 113, 089902 (2026)

DOI: https://doi.org/10.1103/y1r2-gtb5

Abstract

We revisit the production of axionlike particles (ALPs) coupled to electrons at tree level in a relativistic plasma. We explicitly demonstrate the equivalence between pseudoscalar and derivative couplings, incorporate previously neglected processes for the first time—namely, semi-Compton production (γe−→ae−) and pair annihilation (e+e−→aγ)—and derive analytical expressions for the bremsstrahlung (e−N→e−Na) production rate, enabling a more computationally efficient evaluation of the ALP flux. Additionally, we assess uncertainties in the production rate arising from electron thermal mass corrections, electron-electron Coulomb interactions, and the Landau-Pomeranchuk-Migdal effect. The ALP emissivity is made available in a public repository as a function of the ALP mass, the temperature, and the electron chemical potential of the plasma. Finally, we examine the impact of ALP production and subsequent decays on astrophysical observables, deriving the leading bounds on ALPs coupling to electrons. At small couplings, the dominant constraints come from the previously neglected decay a→e+e−γ, except for a region of fireball formation where SN 1987A x-ray observations offer the best probe. At large couplings, bounds are dominated by the energy deposition argument, with a recently developed new prescription for the trapping regime.

View figure in article

Physics Subject Headings (PhySH)

Erratum

Erratum: Supernova production of axionlike particles coupling to electrons, reloaded [Phys. Rev. D 112, 083008 (2025)]

Damiano F. G. Fiorillo, Tetyana Pitik, and Edoardo Vitagliano
Phys. Rev. D 113, 089902 (2026)

Article Text

References (81)

  1. L. Oberauer, C. Hagner, G. Raffelt, and E. Rieger, Supernova bounds on neutrino radiative decays, Astropart. Phys. 1, 377 (1993).
  2. S. Davidson, S. Hannestad, and G. Raffelt, Updated bounds on millicharged particles, J. High Energy Phys. 05 (2000) 003.
  3. M. Giannotti, L. D. Duffy, and R. Nita, New constraints for heavy axionlike particles from supernovae, J. Cosmol. Astropart. Phys. 01 (2011) 015.
  4. D. Kazanas, R. N. Mohapatra, S. Nussinov, V. L. Teplitz, and Y. Zhang, Supernova bounds on the dark photon using its electromagnetic decay, Nucl. Phys. B890, 17 (2014).
  5. J. H. Chang, R. Essig, and S. D. McDermott, Revisiting supernova 1987A constraints on dark photons, J. High Energy Phys. 01 (2017) 107.
  6. J. Jaeckel, P. C. Malta, and J. Redondo, Decay photons from the axionlike particles burst of type II supernovae, Phys. Rev. D 98, 055032 (2018).
  7. J. H. Chang, R. Essig, and S. D. McDermott, Supernova 1987A constraints on sub-GeV dark sectors, millicharged particles, the QCD axion, and an axionlike particle, J. High Energy Phys. 09 (2018) 051.
  8. V. Brdar, A. Greljo, J. Kopp, and T. Opferkuch, The neutrino magnetic moment portal: Cosmology, astrophysics, and direct detection, J. Cosmol. Astropart. Phys. 01 (2021) 039.
  9. D. Croon, G. Elor, R. K. Leane, and S. D. McDermott, Supernova muons: New constraints on Z’ bosons, axions and ALPs, J. High Energy Phys. 01 (2021) 107.
  10. J. M. Camalich, J. Terol-Calvo, L. Tolos, and R. Ziegler, Supernova constraints on dark flavored sectors, Phys. Rev. D 103, L121301 (2021).
  11. G. Lucente, P. Carenza, T. Fischer, M. Giannotti, and A. Mirizzi, Heavy axionlike particles and core-collapse supernovae: Constraints and impact on the explosion mechanism, J. Cosmol. Astropart. Phys. 12 (2020) 008.
  12. A. Caputo, G. Raffelt, and E. Vitagliano, Muonic boson limits: Supernova redux, Phys. Rev. D 105, 035022 (2022).
  13. A. Caputo, H.-T. Janka, G. Raffelt, and E. Vitagliano, Low-energy supernovae severely constrain radiative particle decays, Phys. Rev. Lett. 128, 221103 (2022).
  14. A. Caputo, G. Raffelt, and E. Vitagliano, Radiative transfer in stars by feebly interacting bosons, J. Cosmol. Astropart. Phys. 08 (2022) 045.
  15. R. Z. Ferreira, M. C. D. Marsh, and E. Müller, Strong supernovae bounds on ALPs from quantum loops, J. Cosmol. Astropart. Phys. 11 (2022) 057.
  16. S. Hoof and L. Schulz, Updated constraints on axionlike particles from temporal information in supernova SN1987A gamma-ray data, J. Cosmol. Astropart. Phys. 03 (2023) 054.
  17. A. Lella, P. Carenza, G. Lucente, M. Giannotti, and A. Mirizzi, Protoneutron stars as cosmic factories for massive axionlike particles, Phys. Rev. D 107, 103017 (2023).
  18. D. F. G. Fiorillo, G. G. Raffelt, and E. Vitagliano, Strong supernova 1987A constraints on bosons decaying to neutrinos, Phys. Rev. Lett. 131, 021001 (2023).
  19. K. Akita, S. H. Im, and M. Masud, Probing non-standard neutrino interactions with a light boson from next galactic and diffuse supernova neutrinos, J. High Energy Phys. 12 (2022) 050.
  20. M. Diamond, D. F. G. Fiorillo, G. Marques-Tavares, and E. Vitagliano, Axion-sourced fireballs from supernovae, Phys. Rev. D 107, 103029 (2023); 108, 049902(E) (2023).
  21. A. Lella, P. Carenza, G. Co’, G. Lucente, M. Giannotti, A. Mirizzi, and T. Rauscher, Getting the most on supernova axions, Phys. Rev. D 109, 023001 (2024).
  22. D. F. G. Fiorillo, G. G. Raffelt, and E. Vitagliano, Supernova emission of secretly interacting neutrino fluid: Theoretical foundations, Phys. Rev. D 109, 023017 (2024).
  23. D. F. G. Fiorillo, G. G. Raffelt, and E. Vitagliano, Large neutrino secret interactions have a small impact on supernovae, Phys. Rev. Lett. 132, 021002 (2024).
  24. P. Carenza, G. Lucente, L. Mastrototaro, A. Mirizzi, and P. D. Serpico, Comprehensive constraints on heavy sterile neutrinos from core-collapse supernovae, Phys. Rev. D 109, 063010 (2024).
  25. K. Akita, S. H. Im, M. Masud, and S. Yun, Limits on heavy neutral leptons, Z’ bosons and majorons from high-energy supernova neutrinos, J. High Energy Phys. 07 (2024) 057.
  26. A. Lella, E. Ravensburg, P. Carenza, and M. C. D. Marsh, Supernova limits on QCD axionlike particles, Phys. Rev. D 110, 043019 (2024).
  27. D. F. G. Fiorillo and E. Vitagliano, Self-interacting dark sectors in supernovae can behave as a relativistic fluid, Phys. Rev. Lett. 133, 251004 (2024).
  28. B. Telalovic, D. F. G. Fiorillo, P. Martínez-Miravé, E. Vitagliano, and M. Bustamante, The next galactic supernova can uncover mass and couplings of particles decaying to neutrinos, J. Cosmol. Astropart. Phys. 11 (2024) 011.
  29. J. N. Benabou, C. A. Manzari, Y. Park, G. Prabhakar, B. R. Safdi, and I. Savoray, Time-delayed gamma-ray signatures of heavy axions from core-collapse supernovae, Phys. Rev. D 111, 095029 (2025).
  30. J. Alda, G. Levati, P. Paradisi, S. Rigolin, and N. Selimovic, Collider and astrophysical signatures of light scalars with enhanced τ couplings, J. High Energy Phys. 06 (2025) 008.
  31. M. D. Diamond and G. Marques-Tavares, γ-ray flashes from dark photons in neutron star mergers, Phys. Rev. Lett. 128, 211101 (2022).
  32. D. F. G. Fiorillo and F. Iocco, Axions from neutron star mergers, Phys. Rev. D 105, 123007 (2022).
  33. M. Diamond, D. F. G. Fiorillo, G. Marques-Tavares, I. Tamborra, and E. Vitagliano, Multimessenger constraints on radiatively decaying axions from GW170817, Phys. Rev. Lett. 132, 101004 (2024).
  34. P. S. B. Dev, J.-F. Fortin, S. P. Harris, K. Sinha, and Y. Zhang, First constraints on the photon coupling of axionlike particles from multimessenger studies of the neutron star merger GW170817, Phys. Rev. Lett. 132, 101003 (2024).
  35. A. Caputo, P. Carenza, G. Lucente, E. Vitagliano, M. Giannotti, K. Kotake, T. Kuroda, and A. Mirizzi, Axionlike particles from hypernovae, Phys. Rev. Lett. 127, 181102 (2021).
  36. L. Di Luzio, M. Giannotti, E. Nardi, and L. Visinelli, The landscape of QCD axion models, Phys. Rep. 870, 1 (2020).
  37. G. G. Raffelt, Axion constraints from white dwarf cooling times, Phys. Lett. 166B, 402 (1986).
  38. A. H. Corsico, L. G. Althaus, M. M. M. Bertolami, A. D. Romero, E. Garcia-Berro, J. Isern, and S. O. Kepler, The rate of cooling of the pulsating white dwarf star G117-B15A: A new asteroseismological inference of the axion mass, Mon. Not. R. Astron. Soc. 424, 2792 (2012).
  39. A. H. Corsico, L. G. Althaus, A. D. Romero, A. S. Mukadam, E. Garcia-Berro, J. Isern, S. O. Kepler, and M. A. Corti, An independent limit on the axion mass from the variable white dwarf star R548, J. Cosmol. Astropart. Phys. 12 (2012) 010.
  40. M. M. Miller Bertolami, B. E. Melendez, L. G. Althaus, and J. Isern, Revisiting the axion bounds from the galactic white dwarf luminosity function, J. Cosmol. Astropart. Phys. 10 (2014) 069.
  41. T. Battich, A. H. Córsico, L. G. Althaus, and M. M. Miller Bertolami, First axion bounds from a pulsating helium-rich white dwarf star, J. Cosmol. Astropart. Phys. 08 (2016) 062.
  42. S. Bottaro, A. Caputo, G. Raffelt, and E. Vitagliano, Stellar limits on scalars from electron-nucleus bremsstrahlung, J. Cosmol. Astropart. Phys. 07 (2023) 071.
  43. P. F. Depta, M. Hufnagel, and K. Schmidt-Hoberg, Updated BBN constraints on electromagnetic decays of MeV-scale particles, J. Cosmol. Astropart. Phys. 04 (2021) 011.
  44. K. Langhoff, N. J. Outmezguine, and N. L. Rodd, Irreducible axion background, Phys. Rev. Lett. 129, 241101 (2022).
  45. F. Calore, P. Carenza, M. Giannotti, J. Jaeckel, and A. Mirizzi, Bounds on axionlike particles from the diffuse supernova flux, Phys. Rev. D 102, 123005 (2020).
  46. W. DeRocco, P. W. Graham, D. Kasen, G. Marques-Tavares, and S. Rajendran, Observable signatures of dark photons from supernovae, J. High Energy Phys. 02 (2019) 171.
  47. F. Calore, P. Carenza, M. Giannotti, J. Jaeckel, G. Lucente, L. Mastrototaro, and A. Mirizzi, 511 keV line constraints on feebly interacting particles from supernovae, Phys. Rev. D 105, 063026 (2022).
  48. P. Carenza and G. Lucente, Supernova bound on axionlike particles coupled with electrons, Phys. Rev. D 104, 103007 (2021); 110, 049901(E) (2024).
  49. E. Braaten, Neutrino emissivity of an ultrarelativistic plasma from positron and plasmino annihilation, Astrophys. J. 392, 70 (1992).
  50. E. Petitgirard, Massive fermion dispersion relation at finite temperature, Z. Phys. C 54, 673 (1992).
  51. P. Carenza and G. Lucente, Revisiting axion-electron bremsstrahlung emission rates in astrophysical environments, Phys. Rev. D 103, 123024 (2021).
  52. G. G. Raffelt, Stars as Laboratories for Fundamental Physics: The Astrophysics of Neutrinos, Axions, and Other Weakly Interacting Particles (University of Chicago Press, 1996).
  53. L. P. Pitaevskii and E. Lifshitz, Physical Kinetics: Volume 10 (Butterworth-Heinemann, London, 2012).
  54. L. Landau and I. Pomeranchuk, Limits of applicability of the theory of bremsstrahlung electrons and pair production at high-energies, Dokl. Akad. Nauk Ser. Fiz. 92, 535 (1953).
  55. G. Raffelt and D. Seckel, Multiple scattering suppression of the bremsstrahlung emission of neutrinos and axions in supernovae, Phys. Rev. Lett. 67, 2605 (1991).
  56. T. P23, Axion-production-in-relativistic-plasma, https://github.com/TaniaP23/AXION-PRODUCTION-IN-RELATIVISTIC-PLASMA, 2025.
  57. E. C. Ravensburg, Astrophysical probes of axionlike particles, Ph.D. thesis, Stockholm University, 2023.
  58. R. Mayle, J. R. Wilson, J. R. Ellis, K. A. Olive, D. N. Schramm, and G. Steigman, Constraints on axions from SN 1987a, Phys. Lett. B 203, 188 (1988).
  59. M. S. Turner, Axions from SN 1987a, Phys. Rev. Lett. 60, 1797 (1988).
  60. A. Burrows, M. S. Turner, and R. P. Brinkmann, Axions and SN 1987a, Phys. Rev. D 39, 1020 (1989).
  61. R. Mayle, J. R. Wilson, J. R. Ellis, K. A. Olive, D. N. Schramm, and G. Steigman, Updated constraints on axions from SN 1987a, Phys. Lett. B 219, 515 (1989).
  62. A. Burrows, M. T. Ressell, and M. S. Turner, Axions and SN1987A: Axion trapping, Phys. Rev. D 42, 3297 (1990).
  63. D. F. G. Fiorillo, M. Heinlein, H.-T. Janka, G. Raffelt, E. Vitagliano, and R. Bollig, Supernova simulations confront SN 1987A neutrinos, Phys. Rev. D 108, 083040 (2023).
  64. D. F. G. Fiorillo, T. Pitik, and E. Vitagliano, Energy transfer by feebly interacting particles in supernovae: The trapping regime, Phys. Rev. Lett. 135, 071005 (2025).
  65. R. Bollig, W. DeRocco, P. W. Graham, and H.-T. Janka, Muons in supernovae: Implications for the axion-muon coupling, Phys. Rev. Lett. 125, 051104 (2020); 126, 189901(E) (2021).
  66. Garching core-collapse supernova research archive, https://wwwmpa.mpa-garching.mpg.de/ccsnarchive/.
  67. N. Prantzos et al., The 511 keV emission from positron annihilation in the Galaxy, Rev. Mod. Phys. 83, 1001 (2011).
  68. A. W. Strong, R. Diehl, H. Halloin, V. Schoenfelder, L. Bouchet, P. Mandrou, F. Lebrun, and R. Terrier, Gamma-ray continuum emission from the inner galactic region as observed with integral/spi, Astron. Astrophys. 444, 495 (2005).
  69. L. Bouchet, E. Jourdain, J. P. Roques, A. Strong, R. Diehl, F. Lebrun, and R. Terrier, INTEGRAL SPI all-sky view in soft gamma rays: Study of point source and galactic diffuse emissions, Astrophys. J. 679, 1315 (2008).
  70. T. Siegert, R. Diehl, G. Khachatryan, M. G. H. Krause, F. Guglielmetti, J. Greiner, A. W. Strong, and X. Zhang, Gamma-ray spectroscopy of positron annihilation in the Milky Way, Astron. Astrophys. 586, A84 (2016).
  71. T. Siegert, R. M. Crocker, R. Diehl, M. G. H. Krause, F. H. Panther, M. M. M. Pleintinger, and C. Weinberger, Constraints on positron annihilation kinematics in the inner galaxy, Astron. Astrophys. 627, A126 (2019).
  72. T. Siegert, J. Berteaud, F. Calore, P. D. Serpico, and C. Weinberger, Diffuse galactic emission spectrum between 0.5 and 8.0 MeV, Astron. Astrophys. 660, A130 (2022).
  73. A. Dar, J. Goodman, and S. Nussinov, Can supernovae exclude neutrinos more massive than 30-eV?, Phys. Rev. Lett. 58, 2146 (1987); 59, 1871(E) (1987).
  74. P. De la Torre Luque, S. Balaji, P. Carenza, and L. Mastrototaro, γ rays from in-flight positron annihilation as a probe of new physics, Phys. Rev. D 111, L061303 (2025).
  75. F. Calore, P. Carenza, M. Giannotti, J. Jaeckel, G. Lucente, and A. Mirizzi, Supernova bounds on axionlike particles coupled with nucleons and electrons, Phys. Rev. D 104, 043016 (2021).
  76. J. D. Bjorken, S. Ecklund, W. R. Nelson, A. Abashian, C. Church, B. Lu, L. W. Mo, T. A. Nunamaker, and P. Rassmann, Search for neutral metastable penetrating particles produced in the SLAC beam dump, Phys. Rev. D 38, 3375 (1988).
  77. Y.-S. Liu and G. A. Miller, Validity of the Weizsäcker-Williams approximation and the analysis of beam dump experiments: Production of an axion, a dark photon, or a new axial-vector boson, Phys. Rev. D 96, 016004 (2017).
  78. M. Davier and H. Nguyen Ngoc, An unambiguous search for a light Higgs boson, Phys. Lett. B 229, 150 (1989).
  79. F. R. Candón, D. F. G. Fiorillo, G. Lucente, E. Vitagliano, and J. K. Vogel, NuSTAR bounds on radiatively decaying particles from M82, Phys. Rev. Lett. 134, 171004 (2025).
  80. B. Müller, Hydrodynamics of core-collapse supernovae and their progenitors, Living Rev. Comput. Astrophys. 6, 3 (2020).
  81. E. Ravensburg, Searches for axionlike particles from supernovae beyond tree-level, in Talk Presented at the Suprise Conference Madrid, (IFT UAM-CSIC, Madrid, Spain, 2024).

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation