Confronting Tri-direct CP-symmetry models to neutrino oscillation experiments
arXiv:1905.12939 · doi:10.1103/PhysRevD.100.055022
Abstract
Tri-direct CP symmetry is an economical neutrino model building paradigm, and it allows to describe neutrino masses, mixing angles and CP violation phases in terms of four free parameters. Viability of a class of tri-direct CP models is examined with a comprehensive simulation of current and future neutrino oscillation experiments. Two benchmark models as well as the full parameter space are carefully scanned, and the parameter degeneracy problem is observed from the constraint of one group of neutrino oscillation experiments. Complementary roles from the accelerator neutrino experiments (e.g., T2HK and DUNE) and reactor neutrino experiments (e.g., JUNO) are crucial to break the degeneracy and nail down fundamental neutrino mixing parameters of the underlying theory.
18 pages, 8 figures. Update texts and accepted in PRD
References in corpus (11)
- Indication of Electron Neutrino Appearance from an Accelerator-produced Off-axis Muon Neutrino Beam
- Global analysis of three-flavour neutrino oscillations: synergies and tensions in the determination of theta_23, delta_CP, and the mass ordering
- New features in the simulation of neutrino oscillation experiments with GLoBES 3.0
- Updated fit to three neutrino mixing: exploring the accelerator-reactor complementarity
- Measurement of electron antineutrino oscillation with 1958 days of operation at Daya Bay
- First Double Chooz Measurement via Total Neutron Capture Detection
- Nonstandard neutrino interactions at DUNE, T2HK and T2HKK
- Probing Direct and Indirect Unitarity Violation in Future Accelerator Neutrino Facilities
- Invisible neutrino decays at the MOMENT experiment
- Lepton Mixing Predictions from in the Tri-Direct CP approach to Two Right-handed Neutrino Models
- Design of the LBNF Beamline Target Station