2,693 research outputs found

    Dark matter sterile neutrinos in stellar collapse: alteration of energy/lepton number transport and a mechanism for supernova explosion enhancement

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    We investigate matter-enhanced Mikheyev-Smirnov-Wolfenstein (MSW) active-sterile neutrino conversion in the νe⇌νs\nu_e \rightleftharpoons \nu_s channel in the collapse of the iron core of a pre-supernova star. For values of sterile neutrino rest mass msm_s and vacuum mixing angle θ\theta (specifically, 0.5keV5×10−120.5 {\rm keV} 5\times{10}^{-12}) which include those required for viable sterile neutrino dark matter, our one-zone in-fall phase collapse calculations show a significant reduction in core lepton fraction. This would result in a smaller homologous core and therefore a smaller initial shock energy, disfavoring successful shock re-heating and the prospects for an explosion. However, these calculations also suggest that the MSW resonance energy can exhibit a minimum located between the center and surface of the core. In turn, this suggests a post-core-bounce mechanism to enhance neutrino transport and neutrino luminosities at the core surface and thereby augment shock re-heating: (1) scattering-induced or coherent MSW νe→νs\nu_e\to\nu_s conversion occurs deep in the core, at the first MSW resonance, where νe\nu_e energies are large (∼150\sim 150 MeV); (2) the high energy νs\nu_s stream outward at near light speed; (3) they deposit their energy when they encounter the second MSW resonance νs→νe\nu_s\to\nu_e just below the proto-neutron star surface.Comment: 13 pages, 9 figure

    Sterile Neutrino-Enhanced Supernova Explosions

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    We investigate the enhancement of lepton number, energy, and entropy transport resulting from active-sterile neutrino conversion νe→νs\nu_e\to\nu_s deep in the post-bounce supernova core followed by re-conversion νs→νe\nu_s\to\nu_e further out, near the neutrino sphere. We explicitly take account of shock wave and neutrino heating modification of the active neutrino forward scattering potential which governs sterile neutrino production. We find that the νe\nu_e luminosity at the neutrino sphere could be increased by between ∼10\sim 10 % and ∼100\sim 100 % during the crucial shock re-heating epoch if the sterile neutrino has a rest mass and vacuum mixing parameters in ranges which include those required for viable sterile neutrino dark matter. We also find sterile neutrino transport-enhanced entropy deposition ahead of the shock. This `` pre-heating\rq\rq can help melt heavy nuclei and thereby reduce the nuclear photo-dissociation burden on the shock. Both neutrino luminosity enhancement and pre-heating could increase the likelihood of a successful core collapse supernova explosion.Comment: 12 pages, 4 figure
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