Son Cao, P. T. Quyen, N. T. Hong Van, Ankur Nath, T. V. Ngoc
{"title":"On Precision of the Leptonic Mixing Angle $θ_{23}$ and its Implications for the Flavor Models","authors":"Son Cao, P. T. Quyen, N. T. Hong Van, Ankur Nath, T. V. Ngoc","doi":"arxiv-2409.11824","DOIUrl":null,"url":null,"abstract":"Among three leptonic mixing angles, $\\theta_{23}$ angle, which characterizes\nthe fractional contribution of two flavor eigenstates $\\nu_{\\mu}$ and\n$\\nu_{\\tau}$ to the third mass eigenstate $\\nu_3$, is known to be the largest\nbut the least precisely measured. The work investigates possible reach of\n$\\theta_{23}$ precision with two upcoming gigantic accelerator-based\nlong-baseline neutrino experiments, namely Hyper-Kamiokande and DUNE\nexperiments as well as a possible joint analyses of future neutrino facilities.\nOur simulation yields that each experiment will definitely establish the octant\nof $\\theta_{23}$ angle for all values within 1$\\sigma$ parameter interval,\nwhile considering the current limitation. However, if the actual value is\n$0.48\\leq \\sin^2\\theta_{23}\\leq 0.54$, it becomes challenging for these two\nexperiments to reject the maximal ($\\theta_{23}=\\pi/4$) hypothesis and conclude\nits octant. This octant-blind region can be further explored with the proposed\nfacilities ESSnuSB and a neutrino factory. Accurate determination of the mixing\nangle $\\theta_{23}$, as well as the accuracy of $\\delta_{CP}$, is crucial for\nexamining a certain category of discrete non-Abelian leptonic flavor models.\nSpecifically if CP is conserved in leptonic sector, the combined analysis of\nHyper-K and DUNE will rule out the majority of these models. However, if the CP\nis maximally violated, higher precision of $\\delta_{CP}$ is necessary for\ntesting these flavor models.","PeriodicalId":501067,"journal":{"name":"arXiv - PHYS - High Energy Physics - Phenomenology","volume":"34 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - High Energy Physics - Phenomenology","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.11824","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Among three leptonic mixing angles, $\theta_{23}$ angle, which characterizes
the fractional contribution of two flavor eigenstates $\nu_{\mu}$ and
$\nu_{\tau}$ to the third mass eigenstate $\nu_3$, is known to be the largest
but the least precisely measured. The work investigates possible reach of
$\theta_{23}$ 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 $\theta_{23}$ angle for all values within 1$\sigma$ parameter interval,
while considering the current limitation. However, if the actual value is
$0.48\leq \sin^2\theta_{23}\leq 0.54$, it becomes challenging for these two
experiments to reject the maximal ($\theta_{23}=\pi/4$) 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 $\theta_{23}$, as well as the accuracy of $\delta_{CP}$, 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 $\delta_{CP}$ is necessary for
testing these flavor models.