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arXiv · hep-ph/9506385

Cerenkov radiation by neutrinos in a supernova core

Abstract

Neutrinos with a magnetic dipole moment propagating in a medium with a velocity larger than the phase velocity of light emit photons by the Cerenkov process. The Cerenkov radiation is a helicity flip process via which a left-handed neutrino in a supernova core may change into a sterile right-handed one and free-stream out of the core. Assuming that the luminosity of such sterile right-handed neutrinos is less than $10^{53}$ ergs/sec gives an upper bound on the neutrino magnetic dipole moment $μ_ν< 0.2 \times 10^{-13} μ_B$. This is two orders of magnitude more stringent than the previously established bounds on $μ_ν$ from considerations of supernova cooling rate by right-handed neutrinos.

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BibTeXRIS

Subhendra Mohanty, Manoj K. Samal. 1996-04-18. Cerenkov radiation by neutrinos in a supernova core. https://doi.org/10.1103/physrevlett.77.806

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