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Core-collapse supernova explosions hindered by eV-mass sterile neutrinos

Kanji Mori1,*, Tomoya Takiwaki1, Kazunori Kohri1,2,3, and Hiroki Nagakura1

  • 1National Astronomical Observatory of Japan, 2-21-1 Osawa, Mitaka, Tokyo 181-8588, Japan
  • 2Institute of Particle and Nuclear Studies, and International Center for Quantum-field Measurement Systems for Studies of the Universe and Particles (WPI), KEK, 1-1 Oho, Tsukuba, Ibaraki 305-0801, Japan
  • 3Kavli Institute for the Physics and Mathematics of the Universe (WPI), The University of Tokyo, 5-1-5 Kashiwanoha, Kashiwa, Chiba 277-8583, Japan

  • *Contact author: kanji.mori@nao.ac.jp

Phys. Rev. D 111, 083046 – Published 28 April, 2025

DOI: https://doi.org/10.1103/PhysRevD.111.083046

Abstract

Light sterile neutrinos, νs, are often introduced to explain an anomalous deficit in the electron antineutrino flux from nuclear reactors. If they exist, sterile neutrinos would also be produced in collapsing massive stars through the active-sterile neutrino oscillation. In order to investigate the impacts of sterile neutrinos on supernova dynamics, we perform two-dimensional neutrino-radiation hydrodynamic simulations of stellar core-collapse coupled with the active-sterile oscillation through the Mikheyev–Smirnov–Wolfenstein effect. As the initial condition of our simulations, we adopt a blue supergiant model that is tuned to reproduce observational features of the SN 1987A progenitor to compare our models with observations of the event. It is found that the active-sterile oscillation reduces the νe and ν¯e fluxes and decreases the explosion energy. We also find that, if the mixing angle θ and the mass difference δms2 between νe and νs are large enough, the star fails to explode. This suggests that these mixing parameters relevant to sterile neutrinos could be constrained by supernova explodability, though other uncertainties in supernova theory need to be addressed to refine them. In addition, we predict neutrino signals from a nearby supernova event and find that the neutrino event number can significantly decrease because the νe and ν¯e fluxes are reduced. In particular, DUNE observations of νe will be useful to search for a signature of sterile neutrinos with a tiny mixing angle because a smaller mixing angle leads to a larger effect on the νe flux.

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