Multiscalar extension based on flavor symmetry for neutrino mass and mixing
arXiv:2012.01715 · doi:10.1088/1674-1137/abe1c7
Abstract
A multiscalar and nonrenormalizable extension of the standard model (SM) with symmetry which successfully explains the recent observed neutrino oscillation data is proposed. The tiny neutrino masses and their hierarchies are generated via the type-I seesaw mechanism. The model reproduces the recent experiments of neutrino mixing angles and Dirac CP violating phase in which the atmospheric angle and the reactor angle get the best-fit values while the solar angle and Dirac CP violating phase () belong to $3\, \si $ range of the best-fit value for normal hierarchy (NH). For inverted hierarchy (IH), gets the best-fit value and together with $\de $ belongs to $1\, \si $ range while belongs to $3\, \si $ range of the best-fit value. The effective neutrino masses are predicted to be $\langle m_{ee}\rangle=6.81 \,\, \mbox{meV}$ for NH and $\langle m_{ee}\rangle=48.48\,\, \mbox{meV}$ for IH being in good agreement with the most recent experimental data.
20 pages, 9 figures, 2 tables
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