arXiv:1901.01205·v2·High Energy Physics — Phenomenology
Fully constrained mass matrix: Can symmetries alone determine the flavon vacuum alignments?
Abstract
In the framework of the representation theory of finite groups, it was recently shown that a fully constrained complex-symmetric mass matrix can be conveniently mapped into a sextet of . In this paper, we introduce an additional flavor group in the model so that the vacuum alignment of the sextet is determined not only by the symmetries of but also by that of . We define several flavons which transform as multiplets under as well as . The vacuum alignment of each of these flavons is obtained as a simultaneous invariant eigenstate of specific elements of the groups and ; i.e.,~the vacuum alignment is fully determined by its residual symmetries. These flavons couple together uniquely resulting in the fully constrained sextet of . Through this work we propose a general formalism in which the flavor symmetry group () is obtained as the direct product, . Fermions transform nontrivially only under while they remain invariant under . Flavons, on the other hand, transform nontrivially under both and . The vacuum alignment of each flavon multiplet transforming irreducibly under is uniquely identified by its corresponding residual symmetry (a subgroup of ). Several such flavons couple together to form an effective multiple of which remains invariant under . This effective multiplet couples to the fermions.
Comments: 17 pages, 3 figures