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High intensity neutrino oscillation facilities in Europe

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High intensity neutrino oscillation facilities in Europe

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dc.contributor.author Cervera Villanueva, Anselmo
dc.contributor.author Gómez Cadenas, Juan José
dc.contributor.author Hernández Gamazo, Pilar
dc.contributor.author Donini, Andrea
dc.contributor.author Ghosh, T.
dc.contributor.author Mena Requejo, Olga
dc.contributor.author Martín-Albo Simón, Justo
dc.contributor.author Agarwalla, Sanjib Kumar
dc.date.accessioned 2013-11-18T14:01:57Z
dc.date.available 2013-11-18T14:01:57Z
dc.date.issued 2013
dc.identifier.citation Cervera Villanueva, Anselmo Gómez Cadenas, Juan José Agarwalla, S. K. Hernández Gamazo, Pilar Donini, A. Ghosh, T. Mena Requejo, Olga Martín-Albo Simón, Justo Agarwalla, S.K. 2013 High intensity neutrino oscillation facilities in Europe Physical Review Special Topics-Accelerators And Beams 16 2 021002-1 021002-18
dc.identifier.uri http://hdl.handle.net/10550/31123
dc.description.abstract The EUROnu project has studied three possible options for future, high intensity neutrino oscillation facilities in Europe. The first is a Super Beam, in which the neutrinos come from the decay of pions created by bombarding targets with a 4 MW proton beam from the CERN High Power Superconducting Proton Linac. The far detector for this facility is the 500 kt MEMPHYS water Cherenkov, located in the Frejus tunnel. The second facility is the Neutrino Factory, in which the neutrinos come from the decay of mu(+) and mu(-) beams in a storage ring. The far detector in this case is a 100 kt magnetized iron neutrino detector at a baseline of 2000 km. The third option is a Beta Beam, in which the neutrinos come from the decay of beta emitting isotopes, in particular He-6 and Ne-18, also stored in a ring. The far detector is also the MEMPHYS detector in the Frejus tunnel. EUROnu has undertaken conceptual designs of these facilities and studied the performance of the detectors. Based on this, it has determined the physics reach of each facility, in particular for the measurement of CP violation in the lepton sector, and estimated the cost of construction. These have demonstrated that the best facility to build is the Neutrino Factory. However, if a powerful proton driver is constructed for another purpose or if the MEMPHYS detector is built for astroparticle physics, the Super Beam also becomes very attractive.
dc.relation.ispartof Physical Review Special Topics-Accelerators And Beams, 2013, vol. 16, num. 2, p. 021002-1-021002-18
dc.subject Física
dc.title High intensity neutrino oscillation facilities in Europe
dc.type journal article es_ES
dc.date.updated 2013-11-18T14:01:57Z
dc.identifier.doi 10.1103/PhysRevSTAB.16.021002
dc.identifier.idgrec 084325
dc.rights.accessRights open access es_ES
dc.identifier.url 10.1103/PhysRevSTAB.16.021002

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