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The mass-hierarchy and CP-violation discovery reach of the LBNO long-baseline neutrino experiment

  • The LHCb collaboration
  • Institute of Physics
  • Astroparticule and Cosmol APC
  • University of Oulu
  • European Organization for Nuclear Research
  • Laboratoire de Probabilités et Modèles Aléatoires
  • Durham University
  • University of Bern
  • University of Geneva
  • IGFL, Université de Lyon, Université Lyon 1
  • Universite Paris-Saclay
  • ETH Zurich
  • University of Warwick
  • University of Oxford
  • INFN Sezione di Bari
  • Lancaster University
  • Horia Hulubei National Institute of Physics and Nuclear Engineering
  • University of Sofia
  • Universität Hamburg
  • University of Bucharest
  • University College London
  • CCLRC Rutherford Appleton Laboratory
  • High Energy Accelerator Research Organization (KEK)
  • University of Sheffield
  • University of Liverpool
  • Université Savoie Mont Blanc
  • Queen Mary University of London
  • Petersburg Nuclear Physics Institute (PNPI)
  • University of Helsinki
  • Joint Institute for Nuclear Research, Dubna
  • Yerevan Physics Institute
  • Institute for Nuclear Research of the Russian Academy of Sciences
  • University of Jyväskylä
  • National Research Nuclear University MEPhI
  • Moscow Institute of Physics and Technology
  • The University of Sheffield
  • National Centre for Nuclear Research (NCBJ)
  • Iwate University
  • University of Naples Federico II
  • Institut Universitaire de France
  • Istituto Nazionale di Fisica Nucleare, Sezione di Pisa
  • RWTH Aachen University

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47 Citations (Scopus)

Résumé

The next generation neutrino observatory proposed by the LBNO collaboration will address fundamental questions in particle and astroparticle physics. The experiment consists of a far detector, in its first stage a 20 kt LAr double phase TPC and a magnetized iron calorimeter, situated at 2300 km from CERN and a near detector based on a highpressure argon gas TPC. The long baseline provides a unique opportunity to study neutrino flavour oscillations over their 1st and 2nd oscillation maxima exploring the L/E behaviour, and distinguishing effects arising from CP and matter. In this paper we have reevaluated the physics potential of this setup for determining the mass hierarchy (MH) and discovering CP-violation (CPV), using a conventional neutrino beam from the CERN SPS with a power of 750 kW. We use conservative assumptions on the knowledge of oscillation parameter priors and systematic uncertainties. The impact of each systematic error and the precision of oscillation prior is shown. We demonstrate that the first stage of LBNO can determine unambiguously the MH to > 5 C.L. over the whole phase space. We show that the statistical treatment of the experiment is of very high importance, resulting in the conclusion that LBNO has ~ 100% probability to determine the MH in at most 4-5 years of running. Since the knowledge of MH is indispensable to extract CP from the data, the first LBNO phase can convincingly give evidence for CPV on the 3 C.L. using today’s knowledge on oscillation parameters and realistic assumptions on the systematic uncertainties.

langue originaleAnglais
Numéro d'article94
journalJournal of High Energy Physics
Volume2014
Numéro de publication5
Les DOIs
étatPublié - 21 mai 2014
Modification externeOui

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