English

Fresh look at the diffuse ALP background from supernovae

High Energy Physics - Phenomenology 2025-07-10 v2 High Energy Astrophysical Phenomena

Abstract

Protoneutron stars, highly compact objects formed in the core of exploding supernovae (SNe), are powerful sources of axion-like particles (ALPs). In the SN core, ALPs are dominantly produced via nucleon-nucleon bremsstrahlung and pion conversion, resulting in an energetic ALP spectrum peaked at energies O(100)MeV\mathcal{O}(100)\,\rm MeV. In this work, we revisit the diffuse ALP background, produced from all past core-collapse supernovae, and update the constraints derived from Fermi-LAT observations. Assuming the maximum ALP-nucleon coupling allowed by the SN 1987A cooling, we set the upper limit gaγγ2×1013GeV1g_{a \gamma \gamma} \lesssim 2 \times 10^{-13}\,\rm GeV^{-1} for ALP mass ma1010eVm_a\lesssim 10^{-10}\,\rm eV, which is approximately a factor of two improvement with respect to the existing bounds. On the other hand, for ma1010eVm_a \gtrsim 10^{-10}\,\rm eV, we find that including pion conversion strengthens the bound on gaγγg_{a\gamma \gamma}, approximately by a factor of two compared to the constraint obtained from bremsstrahlung alone. Additionally, we present a sensitivity study for future experiments such as AMEGO-X, e-ASTROGAM, GRAMS-balloon, GRAMS-satellite, and MAST. We find that the expected constraint from MAST would be comparable to Fermi-LAT bound. However, SN 1987A constraint remains one order of magnitude stronger as compared to the bound derived from the current and future gamma-ray telescopes.

Keywords

Cite

@article{arxiv.2505.05567,
  title  = {Fresh look at the diffuse ALP background from supernovae},
  author = {Francisco R. Candón and Sougata Ganguly and Maurizio Giannotti and Tanmoy Kumar and Alessandro Lella and Federico Mescia},
  journal= {arXiv preprint arXiv:2505.05567},
  year   = {2025}
}

Comments

9 pages, 4 figures, 1 table, matches the published version on PRD. Changes: Figure 1 updated, and references added

R2 v1 2026-06-28T23:26:20.048Z