Spin-flavor oscillations of Dirac neutrinos described by relativistic quantum mechanics
arXiv:1008.3115 · doi:10.1134/S1063778812020068
Abstract
Spin-flavor oscillations of Dirac neutrinos in matter and a magnetic field are studied using the method of relativistic quantum mechanics. Using the exact solution of the wave equation for a massive neutrino, taking into account external fields, the effective Hamiltonian governing neutrino spin-flavor oscillations is derived. Then the The consistency of our approach with the commonly used quantum mechanical method is demonstrated. The obtained correction to the usual effective Hamiltonian results in the appearance of the new resonance in neutrino oscillations. Applications to spin-flavor neutrino oscillations in an expanding envelope of a supernova are discussed. In particular, transitions between right-polarized electron neutrinos and additional sterile neutrinos are studied for realistic background matter and magnetic field distributions. The influence of other factors such as the longitudinal magnetic field, the matter polarization, and the non-standard contributions to the neutrino effective potential, is also analyzed.
11 pages in Revtex4.1, 2 columns, 1 eps figure; minimal changes, version published in Phys. Atom. Nucl
References in corpus (8)
- Double Beta Decay, Majorana Neutrinos, and Neutrino Mass
- New results on solar neutrino fluxes from 192 days of Borexino data
- Neutrino electromagnetic properties
- GEMMA experiment: three years of the search for the neutrino magnetic moment
- Evolution of Mixed Dirac Particles Interacting with an External Magnetic Field
- Neutrino oscillations in matter and in twisting magnetic fields
- Impact of the Neutrino Magnetic Moment on the Neutrino Fluxes and the Electron Fraction in core-collapse Supernovae
- Neutrino flavor oscillations in background matter
Cited by in corpus (3)
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- Canonical quantization, path integral representations, and pseudoclassical description of massive Weyl neutrinos in external backgrounds