Abstract
AbstractAfter the landmark discovery of non-zero $$\theta _{13}$$
θ
13
by the modern reactor experiments, unprecedented precision on neutrino mass-mixing parameters has been achieved over the past decade. This has set the stage for the discovery of leptonic CP violation (LCPV) at high confidence level in the next-generation long-baseline neutrino oscillation experiments. In this work, we explore in detail the possible complementarity among the on-axis DUNE and off-axis T2HK experiments to enhance the sensitivity to LCPV suppressing the $$\theta _{23}-\delta _{\textrm{CP}}$$
θ
23
-
δ
CP
degeneracy. We find that none of these experiments individually can achieve the milestone of 3$$\sigma $$
σ
LCPV for at least 75% choices of $$\delta _{\textrm{CP}}$$
δ
CP
in its entire range of $$[-180^{\circ }, 180^{\circ }]$$
[
-
180
∘
,
180
∘
]
, with their nominal exposures and systematic uncertainties. However, their combination can attain the same for all values of $$\theta _{23}$$
θ
23
with only half of their nominal exposures. We observe that the proposed T2HKK setup in combination with DUNE can further increase the CP coverage to more than 80% with only half of their nominal exposures. We study in detail how the coverage in $$\delta _{\textrm{CP}}$$
δ
CP
for $$\ge $$
≥
3$$\sigma $$
σ
LCPV depends on the choice of $$\theta _{23}$$
θ
23
, exposure, optimal runtime in neutrino and antineutrino modes, and systematic uncertainties in these experiments in isolation and combination. We find that with an improved systematic uncertainty of 2.7% in appearance mode, the standalone T2HK setup can provide a CP coverage of around 75% for all values of $$\theta _{23}$$
θ
23
. We also discuss the pivotal role of intrinsic, extrinsic, and total CP asymmetries in the appearance channel and extrinsic CP asymmetries in the disappearance channel while analyzing our results.
Funder
Young Scientist Research Grant from the Indian National Science Academy
Department of Atomic Energy, Government of India
United States-India Educational Foundation
Science and Engineering Research Board (SERB), Govt. of India
Department of Science and Technology (DST), Govt. of India
Publisher
Springer Science and Business Media LLC
Subject
Physics and Astronomy (miscellaneous),Engineering (miscellaneous)
Reference87 articles.
1. A.D. Sakharov, Violation of CP invariance, C asymmetry, and baryon asymmetry of the universe. Pisma Zh. Eksp. Teor. Fiz. 5, 32–35 (1967)
2. Particle Data Group Collaboration, R.L. Workman et al., Review of Particle Physics. PTEP 2022, 083C01 (2022)
3. Daya Bay Collaboration, F.P. An et al., Observation of electron-antineutrino disappearance at Daya Bay. Phys. Rev. Lett. 108, 171803 (2012). arXiv:1203.1669
4. P.F. de Salas, D.V. Forero, S. Gariazzo, P. Martínez-Miravé, O. Mena, C.A. Ternes, M. Tórtola, J.W.F. Valle, 2020 global reassessment of the neutrino oscillation picture. JHEP 02, 071 (2021). arXiv:2006.11237
5. I. Esteban, M.C. Gonzalez-Garcia, M. Maltoni, T. Schwetz, A. Zhou, The fate of hints: updated global analysis of three-flavor neutrino oscillations. JHEP 09, 178 (2020). arXiv:2007.14792
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献