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arxiv: 0809.5129 · v3 · pith:PBPXVYRLnew · submitted 2008-09-30 · 🌌 astro-ph

The neutrino signal from protoneutron star accretion and black hole formation

classification 🌌 astro-ph
keywords neutrinoblackluminosityaccretioncollapsedifferencesduringelectron-neutrino
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We discuss the formation of stellar mass black holes via protoneutron star (PNS) collapse. In the absence of an earlier explosion, the PNS collapses to a black hole due to the continued mass accretion onto the PNS. We present an analysis of the emitted neutrino spectra of all three flavors during the PNS contraction. Special attention is given to the physical conditions which depend on the input physics, e.g. the equation of state (EoS) and the progenitor model. The PNSs are modeled as the central object in core collapse simulations using general relativistic three-flavor Boltzmann neutrino transport in spherical symmetry. The simulations are launched from several massive progenitors of 40 and 50 solar mass. We analyze the electron-neutrino luminosity dependencies and construct a simple approximation for the electron-neutrino luminosity, which depends only on the physical conditions at the electron-neutrinosphere. In addition, we analyze different mu/tau-neutrino pair-reactions separately and compare the differences during the post-bounce phase of failed core collapse supernova explosions of massive progenitors. We also investigate the connection between the increasing mu/tau-neutrino luminosity and the PNS contraction during the accretion phase before black hole formation. Comparing the different post bounce phase of the progenitor models under investigation, we find large differences in the emitted neutrino spectra. These differences and the analysis of the electron-neutrino luminosity indicate a strong progenitor model dependency of the emitted neutrino signal.

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Cited by 2 Pith papers

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  1. Flavor Conversion Enhances or Suppresses Supernova Explodability Independent of the Progenitor Mass

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    Neutrino flavor conversion in supernova cores can enhance or suppress explodability depending on the conversion location, independent of progenitor mass.

  2. Neutrino Flavor Conversion Shapes the Rate of Failed Core-collapse Supernovae

    astro-ph.HE 2026-05 unverdicted novelty 5.0

    Simulations of 195 stellar progenitors indicate that neutrino flavor conversion alters explodability and remnant mass distributions, particularly for stars of 16-30 solar masses.