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Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry

The generation of a matter-antimatter asymmetry in the Universe may be induced by the propagation of fermions in non-trivial, spherically asymmetric (and hence Lorentz violating) gravitational backgrounds. Such backgrounds may characterise the epoch of the early universe. The key point in these mode...

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Detalles Bibliográficos
Autores principales: Mavromatos, Nick E., Sarkar, Sarben
Lenguaje:eng
Publicado: 2013
Materias:
Acceso en línea:https://dx.doi.org/10.1051/epjconf/20147100085
http://cds.cern.ch/record/1637902
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author Mavromatos, Nick E.
Sarkar, Sarben
author_facet Mavromatos, Nick E.
Sarkar, Sarben
author_sort Mavromatos, Nick E.
collection CERN
description The generation of a matter-antimatter asymmetry in the Universe may be induced by the propagation of fermions in non-trivial, spherically asymmetric (and hence Lorentz violating) gravitational backgrounds. Such backgrounds may characterise the epoch of the early universe. The key point in these models is that the background induces different dispersion relations, hence populations, between fermions and antifermions, and thus CPT Violation (CPTV) appears in thermal equilibrium. Species populations may freeze out leading to leptogenesis and baryogenesis. We consider here a string-inspired scenario, in which the CPTV is associated with a cosmological background with torsion provided by the Kalb-Ramond (KR) antisymemtric tensor field of the string gravitational multiplet. In a four-dimensional space time this field is dual to a pseudoscalar ``axion-like'' field. The mixing of the KR field with an ordinary axion field can lead to the generation of a Majorana neutrino mass.
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spelling cern-16379022023-03-14T18:24:23Zdoi:10.1051/epjconf/20147100085http://cds.cern.ch/record/1637902engMavromatos, Nick E.Sarkar, SarbenNeutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter AsymmetryParticle Physics - PhenomenologyThe generation of a matter-antimatter asymmetry in the Universe may be induced by the propagation of fermions in non-trivial, spherically asymmetric (and hence Lorentz violating) gravitational backgrounds. Such backgrounds may characterise the epoch of the early universe. The key point in these models is that the background induces different dispersion relations, hence populations, between fermions and antifermions, and thus CPT Violation (CPTV) appears in thermal equilibrium. Species populations may freeze out leading to leptogenesis and baryogenesis. We consider here a string-inspired scenario, in which the CPTV is associated with a cosmological background with torsion provided by the Kalb-Ramond (KR) antisymemtric tensor field of the string gravitational multiplet. In a four-dimensional space time this field is dual to a pseudoscalar ``axion-like'' field. The mixing of the KR field with an ordinary axion field can lead to the generation of a Majorana neutrino mass.The generation of a matter-antimatter asymmetry in the universe may be induced by the propagation of fermions in non-trivial, spherically asymmetric (and hence Lorentz violating) gravitational backgrounds. Such backgrounds may characterise the epoch of the early universe. The key point in these models is that the background induces di_erent dispersion relations, hence populations, between fermions and antifermions, and thus CPT Violation (CPTV) appears in thermal equilibrium. Species populations may freeze out leading to leptogenesis and baryogenesis. We consider here a string-inspired scenario, in which the CPTV is associated with a cosmological background with torsion provided by the Kalb-Ramond (KR) antisymemtric tensor field of the string gravitational multiplet. In a four-dimensional space time this field is dual to a pseudoscalar 'axionlike' field. The mixing of the KR field with an ordinary axion field can lead to the generation of a Majorana neutrino mass.The generation of a matter-antimatter asymmetry in the Universe may be induced by the propagation of fermions in non-trivial, spherically asymmetric (and hence Lorentz violating) gravitational backgrounds. Such backgrounds may characterise the epoch of the early universe. The key point in these models is that the background induces different dispersion relations, hence populations, between fermions and antifermions, and thus CPT Violation (CPTV) appears in thermal equilibrium. Species populations may freeze out leading to leptogenesis and baryogenesis. We consider here a string-inspired scenario, in which the CPTV is associated with a cosmological background with torsion provided by the Kalb-Ramond (KR) antisymemtric tensor field of the string gravitational multiplet. In a four-dimensional space time this field is dual to a pseudoscalar ``axion-like'' field. The mixing of the KR field with an ordinary axion field can lead to the generation of a Majorana neutrino mass.arXiv:1312.5230KCL-PH-TH-2013-45LCTS-2013-34KCL-PH-TH-2013-45LCTS-2013-34oai:cds.cern.ch:16379022013-12-18
spellingShingle Particle Physics - Phenomenology
Mavromatos, Nick E.
Sarkar, Sarben
Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title_full Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title_fullStr Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title_full_unstemmed Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title_short Neutrinos in the Early Universe, Kalb-Ramond Torsion and Matter-Antimatter Asymmetry
title_sort neutrinos in the early universe, kalb-ramond torsion and matter-antimatter asymmetry
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1051/epjconf/20147100085
http://cds.cern.ch/record/1637902
work_keys_str_mv AT mavromatosnicke neutrinosintheearlyuniversekalbramondtorsionandmatterantimatterasymmetry
AT sarkarsarben neutrinosintheearlyuniversekalbramondtorsionandmatterantimatterasymmetry