Physics implication from higher weak isospin decomposition
arXiv:2305.10150 · doi:10.1140/epjc/s10052-023-11886-0
Abstract
The symmetry actually studied is directly broken to the electroweak symmetry by a Higgs triplet, predicting a relevant new physics at TeV scale. This work argues, by contrast, that the higher weak isospin might be broken at a high energy scale, much beyond TeV, by a Higgs octet to an intermediate symmetry at TeV, before the latter recombined with defines (i.e., broken to) by a Higgs singlet. The new physics coupled to breaking phase is decoupled, whereas what remains is a novel family-nonuniversal abelian model, , significantly overhauling the standard model as well as yielding consistent results for neutrino mass, dark matter, -mass anomaly, and FCNC, differently from the usual 3-3-1 model.
31 pages, 4 figures, 3 tables; Revised version with references added; Published in EPJC
References in corpus (11)
- First Dark Matter Search Results from the LUX-ZEPLIN (LZ) Experiment
- Constraining the Spin-Dependent WIMP-Nucleon Cross Sections with XENON1T
- Interpreting electroweak precision data including the -mass CDF anomaly
- The 3-3-1 model with S_4 flavor symmetry
- Scalar Bilepton Dark Matter
- Small neutrino masses and gauge coupling unification
- Inflation and leptogenesis in the 3-3-1-1 model
- A Consistent Theory of Kinetic Mixing and the Higgs Low-Energy Theorem
- Scotogenic neutrino masses with gauged matter parity and gauge coupling unification
- Novel effects of the -boson mass shift in the 3-3-1 model
- Abelian charge inspired by family number