Minimal Quark-Lepton Complementarity from a Rigid Deformation of Tri-Bimaximal Mixing
Gazal Sharma, Gaurav Katoch
Abstract
We propose a minimal three-family realization of quark--lepton complementarity (QLC) in which the non-trivial correlation matrix is an exactly unitary, rigid deformation of tri-bimaximal mixing. In a canonical TBM convention the deformation is a rotation about the normalized axis ngg=(2,1,2)T/3, with rotation angle fixed by the Cabibbo angle, αgg=-3θC/4. The resulting ansatz, = Rngg(-3θC/4), contains no new continuous parameter in the Dirac lepton-mixing sector once the structural choice is fixed. With the 2025 Particle Data Group CKM fit it predicts θ12=33.29, θ13=8.46, θ23=49.19, and =180.79, with CKM-induced uncertainties much smaller than present oscillation errors. We derive leading Wolfenstein sum rules; in particular, the real deformation preserves the CKM-induced suppression =-Aηλ3/6+ O(λ4) and hence a near-CP-conserving phase. A retrospective simplicity scan shows that the pair (2,1,2),3/4 ranks first among 5510 oriented primitive-integer/rational candidates when tested on epoch-matched 2016 and 2018 oscillation data. In an enlarged 49,622-candidate 2018 scan it is second in raw score but remains first among candidates no more complex than itself under several independent simplicity measures; profiling the rotation strength for the fixed (2,1,2) axis gives r BF=0.74941. We formulate the deformation by a convention-covariant flavor-space generator and give an exact effective eigenframe realization Mν=A I+B+C2. The construction is presently allowed in normal ordering, with the atmospheric sector providing its strongest pressure; its upper-octant atmospheric angle and near-π Dirac phase provide sharp falsifiability targets.
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