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1.
  • Aguilar, J., et al. (författare)
  • Search for Leptonic CP Violation with the ESSnuSBplus Project
  • 2024
  • Ingår i: Letters in High Energy Physics. - : Andromeda Publishing And Academic Services LTD. - 2632-2714.
  • Tidskriftsartikel (refereegranskat)abstract
    • ESSνSB is a design study for a next-generation long-baseline neutrino experiment that aims at the precise measurement of the CP-violating phase, δCP, in the leptonic sector at the second oscillation maximum. The conceptual design report published from the first phase of the project showed that after 10 years of data taking, more than 70% of the possible δCP range will be covered with 5σ C.L. to reject the no-CP-violation hypothesis. The expected value of δCP precision is smaller than 8◦ for all δCP values. The next phase of the project, the ESSνSB+, aims at using the intense muon flux produced together with neutrinos to measure the neutrino-nucleus cross-section, the dominant term of the systematic uncertainty, in the energy range of 0.2–0.6 GeV, using a Low Energy neutrinos from STORed Muons (LEnuSTORM) and a Low Energy Monitored Neutrino Beam (LEMNB) facilities.
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2.
  • Raikwal, Deepak, et al. (författare)
  • Neutrino Mass Ordering Using Synergy between ICAL, T2HK, and JUNO
  • 2023
  • Ingår i: Letters in High Energy Physics. - : Andromeda Publishing and Education Services. - 2632-2714. ; 2023
  • Tidskriftsartikel (refereegranskat)abstract
    • In this work, we investigated mass ordering sensitivity using a combination of three experiments (ICAL, T2HK, and JUNO). All three differ in terms of baselines, energy range, and oscillation channels. All three have some limitations that can be addressed through a combined study. We obtained more than 5σ sensitivity for the unfavorable δCP phase, despite the JUNO detector’s poor resolution (if 3%/√E not achievable). We showed that increasing the run time for ICAL improves the overall sensitivity for MO measurement when combined with T2HK and JUNO. Our results demonstrate the power of combining multiple experiments to achieve more accurate and robust results in neutrino physics. We hope our work will contribute to future experimental efforts in this field and facilitate a deeper understanding of the fundamental properties of neutrinos.
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