A translational flavor symmetry in the mass terms of Dirac and Majorana fermions
arXiv:2102.03050 · doi:10.1088/1361-6471/ac421e
Abstract
Requiring the effective mass term for a category of fundamental Dirac or Majorana fermions of the same electric charge to be invariant under the translational transformations in the flavor space, where and stand respectively for the flavor-dependent complex numbers and a constant spinor field anticommuting with the fermion fields, we show that can be identified as the elements in the -th column of the unitary matrix used to diagonalize the corresponding Hermitian or symmetric fermion mass matrix , and holds accordingly. We find that the reverse is also true. Now that the mass spectra of charged leptons, up- and down-type quarks are all strongly hierarchical and current experimental data allow the lightest neutrino to be massless, we argue that the zero mass limit for the first-family fermions and the translational flavor symmetry behind it should be a natural starting point for building viable fermion mass models.
15 pages. A proof is given to show that the translation of a massless neutrino field, which assures the Dirac equation to be invariant, is equivalent to the translational transformations of three neutrino flavor states in the flavor space as a consequence of flavor mixing. More discussions are added. Accepted for publication in JPG
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