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Dirac Neutrino Dark Matter

We investigate the possibility that dark matter is made of heavy Dirac neutrinos with mass in the range [O(1) GeV- a few TeV] and with suppressed but non-zero coupling to the Standard Model Z as well as a coupling to an additional Z' gauge boson. The first part of this paper provides a model-in...

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Detalles Bibliográficos
Autores principales: Belanger, Genevieve, Pukhov, Alexander, Servant, Geraldine
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2008/01/009
http://cds.cern.ch/record/1040214
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author Belanger, Genevieve
Pukhov, Alexander
Servant, Geraldine
author_facet Belanger, Genevieve
Pukhov, Alexander
Servant, Geraldine
author_sort Belanger, Genevieve
collection CERN
description We investigate the possibility that dark matter is made of heavy Dirac neutrinos with mass in the range [O(1) GeV- a few TeV] and with suppressed but non-zero coupling to the Standard Model Z as well as a coupling to an additional Z' gauge boson. The first part of this paper provides a model-independent analysis for the relic density and direct detection in terms of four main parameters: the mass, the couplings to the Z, to the Z' and to the Higgs. These WIMP candidates arise naturally as Kaluza-Klein states in extra-dimensional models with extended electroweak gauge group SU(2)_L* SU(2)_R * U(1). They can be stable because of Kaluza-Klein parity or of other discrete symmetries related to baryon number for instance, or even, in the low mass and low coupling limits, just because of a phase-space-suppressed decay width. An interesting aspect of warped models is that the extra Z' typically couples only to the third generation, thus avoiding the usual experimental constraints. In the second part of the paper, we illustrate the situation in details in a warped GUT model.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2007
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spelling cern-10402142023-03-15T19:11:09Zdoi:10.1088/1475-7516/2008/01/009http://cds.cern.ch/record/1040214engBelanger, GenevievePukhov, AlexanderServant, GeraldineDirac Neutrino Dark MatterParticle Physics - PhenomenologyWe investigate the possibility that dark matter is made of heavy Dirac neutrinos with mass in the range [O(1) GeV- a few TeV] and with suppressed but non-zero coupling to the Standard Model Z as well as a coupling to an additional Z' gauge boson. The first part of this paper provides a model-independent analysis for the relic density and direct detection in terms of four main parameters: the mass, the couplings to the Z, to the Z' and to the Higgs. These WIMP candidates arise naturally as Kaluza-Klein states in extra-dimensional models with extended electroweak gauge group SU(2)_L* SU(2)_R * U(1). They can be stable because of Kaluza-Klein parity or of other discrete symmetries related to baryon number for instance, or even, in the low mass and low coupling limits, just because of a phase-space-suppressed decay width. An interesting aspect of warped models is that the extra Z' typically couples only to the third generation, thus avoiding the usual experimental constraints. In the second part of the paper, we illustrate the situation in details in a warped GUT model.We investigate the possibility that dark matter is made of heavy Dirac neutrinos with mass in the range [O(1) GeV- a few TeV] and with suppressed but non-zero coupling to the Standard Model Z as well as a coupling to an additional Z' gauge boson. The first part of this paper provides a model-independent analysis for the relic density and direct detection in terms of four main parameters: the mass, the couplings to the Z, to the Z' and to the Higgs. These WIMP candidates arise naturally as Kaluza-Klein states in extra-dimensional models with extended electroweak gauge group SU(2)_L* SU(2)_R * U(1). They can be stable because of Kaluza-Klein parity or of other discrete symmetries related to baryon number for instance, or even, in the low mass and low coupling limits, just because of a phase-space-suppressed decay width. An interesting aspect of warped models is that the extra Z' typically couples only to the third generation, thus avoiding the usual experimental constraints. In the second part of the paper, we illustrate the situation in details in a warped GUT model.arXiv:0706.0526LAPTH-1184-07CERN-PH-TH-2007-083LAPTH-1184-07CERN-PH-TH-2007-083oai:cds.cern.ch:10402142007-06-06
spellingShingle Particle Physics - Phenomenology
Belanger, Genevieve
Pukhov, Alexander
Servant, Geraldine
Dirac Neutrino Dark Matter
title Dirac Neutrino Dark Matter
title_full Dirac Neutrino Dark Matter
title_fullStr Dirac Neutrino Dark Matter
title_full_unstemmed Dirac Neutrino Dark Matter
title_short Dirac Neutrino Dark Matter
title_sort dirac neutrino dark matter
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1088/1475-7516/2008/01/009
http://cds.cern.ch/record/1040214
work_keys_str_mv AT belangergenevieve diracneutrinodarkmatter
AT pukhovalexander diracneutrinodarkmatter
AT servantgeraldine diracneutrinodarkmatter