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October 16, 2025Particles2 citationsOpen Access

Pre-Supernova (Anti)Neutrino Emission Due to Weak-Interaction Reactions with Hot Nuclei

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ADAlan A. DzhioevAYA. V. YudinNDN. V. Dunina‐Barkovskaya

Key Points

  • A thermodynamically consistent approach increases the luminosity and average energy of emitted (anti)neutrinos.
  • Using the MESA code, this study analyzes (anti)neutrino spectra under varying temperature and density conditions.
  • Thermal processes and nuclear weak-interaction reactions are crucial in determining the (anti)neutrino emissions.
  • The comparison of techniques reveals the notable influence of thermal effects on neutrino properties.

Abstract

Reliable predictions of (anti)neutrino spectra and luminosities are essential for assessing the feasibility of detecting pre-supernova neutrinos. Using the stellar evolution code MESA, we calculate the (anti)neutrino spectra and luminosities under realistic conditions of temperature, density, and electron fraction. Our study includes (anti)neutrinos produced by both thermal processes and nuclear weak-interaction reactions. By comparing the results of the thermal quasiparticle random-phase approximation with the standard technique based on the effective Q-value method, we investigate how thermal effects influence the spectra and luminosities of emitted (anti)neutrinos. Our findings show that a thermodynamically consistent treatment of Gamow–Teller transitions in hot nuclei enhances both the energy luminosity and the average energies of the emitted (anti)neutrinos.

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Cite This Study

Dzhioev et al. (2025) studied this question.

synapsesocial.com/papers/68f12bfb2107091eab27a565https://doi.org/10.3390/particles8040084
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