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Atmospheric neutrino anomaly without maximal mixing?

We consider a pattern of neutrino masses in which there is an approximate mass degeneracy between the two mass eigenstates most coupled to the nu /sub mu / and nu /sub tau / flavor eigenstates. Earth-matter effects can lift this degeneracy and induce an effectively maximal mixing between these two g...

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Detalles Bibliográficos
Autores principales: De Rujula, A., Gavela, M.B., Hernandez, P.
Lenguaje:eng
Publicado: 2000
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.63.033001
http://cds.cern.ch/record/421522
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author De Rujula, A.
Gavela, M.B.
Hernandez, P.
author_facet De Rujula, A.
Gavela, M.B.
Hernandez, P.
author_sort De Rujula, A.
collection CERN
description We consider a pattern of neutrino masses in which there is an approximate mass degeneracy between the two mass eigenstates most coupled to the nu /sub mu / and nu /sub tau / flavor eigenstates. Earth-matter effects can lift this degeneracy and induce an effectively maximal mixing between these two generations. This occurs if nu /sub e/'s contain comparable admixtures of the degenerate eigenstates, even if they are not large. This provides an explanation of the atmospheric neutrino anomaly in which the ab initio introduction of a large mixing angle is not required. To test this possibility we perform a detailed analysis of the 52 kiloton-year SuperKamiokande data, and we find that in a large region of parameter space the corresponding confidence levels are excellent. The most recent results from the CHOOZ reactor experiment, however, severely curtail this region, so that the conventional scenario with nearly maximal mixing angles, which we also analyze in detail, is supported by the data.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2000
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spelling cern-4215222021-09-19T13:46:36Zdoi:10.1103/PhysRevD.63.033001http://cds.cern.ch/record/421522engDe Rujula, A.Gavela, M.B.Hernandez, P.Atmospheric neutrino anomaly without maximal mixing?Particle Physics - PhenomenologyWe consider a pattern of neutrino masses in which there is an approximate mass degeneracy between the two mass eigenstates most coupled to the nu /sub mu / and nu /sub tau / flavor eigenstates. Earth-matter effects can lift this degeneracy and induce an effectively maximal mixing between these two generations. This occurs if nu /sub e/'s contain comparable admixtures of the degenerate eigenstates, even if they are not large. This provides an explanation of the atmospheric neutrino anomaly in which the ab initio introduction of a large mixing angle is not required. To test this possibility we perform a detailed analysis of the 52 kiloton-year SuperKamiokande data, and we find that in a large region of parameter space the corresponding confidence levels are excellent. The most recent results from the CHOOZ reactor experiment, however, severely curtail this region, so that the conventional scenario with nearly maximal mixing angles, which we also analyze in detail, is supported by the data.We consider a pattern of neutrino masses in which there is an approximate mass degeneracy between the two mass eigenstates most coupled to the $\nu_\mu$ and $\nu_\tau$ flavour eigenstates. Earth-matter effects can lift this degeneracy and induce an effectively maximal mixing between these two generations. This occurs if $\nu_e$'s contain comparable admixtures of the degenerate eigenstates, even rather small ones. This provides an explanation of the atmospheric neutrino anomaly in which the {\it ab initio} introduction of a large mixing angle is not required. To test this possibility we perform a novel and detailed analysis of the 52 kiloton-year SuperKamiokande data, and we find that in a large region of parameter space the corresponding confidence levels are excellent. The most recent results from the Chooz reactor experiment, however, severely curtail this region, so that the conventional scenario with nearly maximal mixing angles --which we also analyse in detail-- is supported by the data.hep-ph/0001124FTUV-00-09IFIC-CSIC-00-09CERN-TH-2000-000FTUV-2000-9IFIC-2000-09oai:cds.cern.ch:4215222000-01-17
spellingShingle Particle Physics - Phenomenology
De Rujula, A.
Gavela, M.B.
Hernandez, P.
Atmospheric neutrino anomaly without maximal mixing?
title Atmospheric neutrino anomaly without maximal mixing?
title_full Atmospheric neutrino anomaly without maximal mixing?
title_fullStr Atmospheric neutrino anomaly without maximal mixing?
title_full_unstemmed Atmospheric neutrino anomaly without maximal mixing?
title_short Atmospheric neutrino anomaly without maximal mixing?
title_sort atmospheric neutrino anomaly without maximal mixing?
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.63.033001
http://cds.cern.ch/record/421522
work_keys_str_mv AT derujulaa atmosphericneutrinoanomalywithoutmaximalmixing
AT gavelamb atmosphericneutrinoanomalywithoutmaximalmixing
AT hernandezp atmosphericneutrinoanomalywithoutmaximalmixing