Predictions of and neutrino mass from a consistent Froggatt-Nielsen model
arXiv:2307.16470 · doi:10.1103/PhysRevD.108.115021
Abstract
The seesaw mechanism is the most attractive mechanism to explain the small neutrino masses, which predicts the neutrinoless double beta decay () of the nucleus. Thus the discovery of is extremely important for future particle physics. However, the present data on the neutrino oscillation is not sufficient to predict the value of as well as the neutrino mass . In this short article, by adopting a simple and consistent Froggatt-Nielsen model, which can well explain the observed masses and mixing angles of quark and lepton sectors, we calculate the distribution of and . Interestingly, a relatively large part of the preferred parameter space can be detected in the near future.
8 pages, 7 figures, 2 tables, published on PRD
References in corpus (7)
- Observation of electron-antineutrino disappearance at Daya Bay
- The Completed SDSS-IV extended Baryon Oscillation Spectroscopic Survey: Cosmological Implications from two Decades of Spectroscopic Surveys at the Apache Point observatory
- Symmetries and Strings in Field Theory and Gravity
- Final Results of GERDA on the Search for Neutrinoless Double- Decay
- Search for the Majorana Nature of Neutrinos in the Inverted Mass Ordering Region with KamLAND-Zen
- Precise Values of Running Quark and Lepton Masses in the Standard Model
- Minimal Froggatt-Nielsen Textures