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arXiv:2603.21264·v2·High Energy Physics — Phenomenology

From seesaw over-suppression to trimaximal mixing: why is the minimal resolution of the neutrino failure

Navid Ardakanian

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Abstract

We investigate whether the type-I seesaw mechanism can rescue the Froggatt--Nielsen framework for neutrinos and find that it cannot. With right-handed Majorana masses carrying the charge structure dictated by the Majorana bilinear -- where suppression powers follow -- the mass matrix contains an unsuppressed off-diagonal entry whose dominance in , combined with the hierarchical column texture of , over-suppresses the two lightest neutrino masses to while remains . This pushes the solar-to-atmospheric mass ratio to a median -- eight orders of magnitude below the observed value of . We prove this failure is universal across all six permutations of the charges and show analytically that the generic ratio scales as , with fewer than of parameter-space points exceeding . The PMNS angles remain Haar-random, carrying no information from the expansion parameter. We then show that , the alternating group of order 12, is the minimal discrete symmetry resolving both failures. Its triplet representation provides two independent vacuum parameters controlling the solar and atmospheric mass scales separately, while constraining the PMNS matrix to the trimaximal TM pattern. The TM solar sum rule predicts ( from NuFit 6.0, from JUNO), and the atmospheric sum rule yields a parameter-free correlation predicting , testable at DUNE and T2HK.

Comments: 22 pages, 1 figure, 7 tables. v2: corrected analytical scaling from to (Theorem 4.1); title updated accordingly; additional references

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