Vacuum structure of the Babu-Nandi-Tavartkiladze model of neutrino mass generation
Saiyad Ashanujjaman, Siddharth P. Maharathy

TL;DR
This paper investigates the vacuum stability of the Babu-Nandi-Tavartkiladze model, analyzing conditions under which the electroweak vacuum is the global minimum, considering scalar potential boundedness and perturbative unitarity.
Contribution
It provides a systematic framework and practical criteria for assessing vacuum stability in the BNT neutrino mass model, including special cases and mass inequalities.
Findings
Electroweak vacuum is not always the global minimum; charge-breaking points may be deeper.
For zero quadruplet expectation, stability reduces to two scalar mass inequalities.
In the limit of vanishing neutrino-mass interaction, electroweak configurations coexist with a definite ordering.
Abstract
We analyze the vacuum structure of the Babu--Nandi--Tavartkiladze (BNT) model of neutrino mass generation, in which the Standard Model is extended by an scalar quadruplet with hypercharge and a vector-like triplet fermion with , generating neutrino masses via an effective dimension-seven operator. We delineate the theoretical constraints on the model, requiring the scalar potential to be bounded from below in all field directions, ensuring perturbative unitarity of scattering amplitudes, and demanding that the electroweak vacuum corresponds to the global minimum of the potential. We find that the electroweak vacuum is not generically guaranteed to be the global minimum: several charge-breaking stationary points may coexist with -- and potentially lie below -- it in potential depth. For the electroweak-like vacuum with vanishing quadruplet expectation…
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