arXiv:2409.11824·v2·High Energy Physics — Phenomenology
On Precision of the Leptonic Mixing Angle and its Implications for the Flavor Models
Son Cao🇻🇳 · P. T. Quyen🇻🇳 · N. T. Hong Van🇻🇳 · Ankur Nath🇮🇳 · T. V. Ngoc🇯🇵
Abstract
Among three leptonic mixing angles, angle, which characterizes the fractional contribution of two flavor eigenstates and to the third mass eigenstate , is known to be the largest but the least precisely measured. The work investigates possible reach of precision with two upcoming gigantic accelerator-based long-baseline neutrino experiments, namely Hyper-Kamiokande and DUNE experiments as well as a possible joint analyses of future neutrino facilities. Our simulation yields that each experiment will definitely establish the octant of angle for all values within 1 parameter interval, while considering the current limitation. However, if the actual value is , it becomes challenging for these two experiments to reject the maximal () hypothesis and conclude its octant. This octant-blind region can be further explored with the proposed facilities ESSnuSB and a neutrino factory. Accurate determination of the mixing angle , as well as the accuracy of , is crucial for examining a certain category of discrete non-Abelian leptonic flavor models. Specifically if CP is conserved in leptonic sector, the combined analysis of Hyper-K and DUNE will rule out the majority of these models. However, if the CP is maximally violated, higher precision of is necessary for testing these flavor models.
Comments: Update DUNE simulation and adding section and appendix for describing the experimental setup