Cargando…

Exposing Dark Sector with Future Z-Factories

We investigate the prospects of searching dark sector models via exotic Z-boson decay at future $e^+ e^-$ colliders with Giga Z and Tera Z options. Four general categories of dark sector models: Higgs portal dark matter, vector portal dark matter, inelastic dark matter and axion-like particles, are...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Jia, Wang, Lian-Tao, Wang, Xiao-Ping, Xue, Wei
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.97.095044
http://cds.cern.ch/record/2298972
_version_ 1780957015142563840
author Liu, Jia
Wang, Lian-Tao
Wang, Xiao-Ping
Xue, Wei
author_facet Liu, Jia
Wang, Lian-Tao
Wang, Xiao-Ping
Xue, Wei
author_sort Liu, Jia
collection CERN
description We investigate the prospects of searching dark sector models via exotic Z-boson decay at future $e^+ e^-$ colliders with Giga Z and Tera Z options. Four general categories of dark sector models: Higgs portal dark matter, vector portal dark matter, inelastic dark matter and axion-like particles, are considered. Focusing on channels motivated by the dark sector models, we carry out a model independent study of the sensitivities of Z-factories in probing exotic decays. The limits on branching ratios of the exotic Z decay are typically $\mathcal{O} (10^{-6} - 10^{-8.5}) $ for the Giga Z and $\mathcal{O} (10^{-7.5} - 10^{-11})$ for the Tera Z, and they are compared with the projection for the high luminosity LHC. We demonstrate that future Z-factories can provide its unique and leading sensitivity, and highlight the complementarity with other experiments, including the indirect and direct dark matter search limits, and the existing collider limits. Future Z factories will play a leading role to uncover the hidden sector of the universe in the future.
id cern-2298972
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling cern-22989722021-05-03T20:23:10Zdoi:10.1103/PhysRevD.97.095044http://cds.cern.ch/record/2298972engLiu, JiaWang, Lian-TaoWang, Xiao-PingXue, WeiExposing Dark Sector with Future Z-Factorieshep-phParticle Physics - PhenomenologyWe investigate the prospects of searching dark sector models via exotic Z-boson decay at future $e^+ e^-$ colliders with Giga Z and Tera Z options. Four general categories of dark sector models: Higgs portal dark matter, vector portal dark matter, inelastic dark matter and axion-like particles, are considered. Focusing on channels motivated by the dark sector models, we carry out a model independent study of the sensitivities of Z-factories in probing exotic decays. The limits on branching ratios of the exotic Z decay are typically $\mathcal{O} (10^{-6} - 10^{-8.5}) $ for the Giga Z and $\mathcal{O} (10^{-7.5} - 10^{-11})$ for the Tera Z, and they are compared with the projection for the high luminosity LHC. We demonstrate that future Z-factories can provide its unique and leading sensitivity, and highlight the complementarity with other experiments, including the indirect and direct dark matter search limits, and the existing collider limits. Future Z factories will play a leading role to uncover the hidden sector of the universe in the future.We investigate the prospects of searching dark sector models via exotic Z-boson decay at future e+e- colliders with Giga Z and Tera Z options. Four general categories of dark sector models, Higgs portal dark matter, vector-portal dark matter, inelastic dark matter, and axionlike particles, are considered. Focusing on channels motivated by the dark sector models, we carry out a model-independent study of the sensitivities of Z factories in probing exotic decays. The limits on branching ratios of the exotic Z decay are typically O(10-6–10-8.5) for the Giga Z and O(10-7.5–10-11) for the Tera Z, and they are compared with the projection for the high luminosity LHC. We demonstrate that future Z factories can provide its unique and leading sensitivity and highlight the complementarity with other experiments, including the indirect and direct dark matter search limits and the existing collider limits. Future Z factories will play a leading role in uncovering the hidden sector of the Universe in the future.CERN-TH-2017-278EFI-17-28MITP-17-102MIT-CTP-4972arXiv:1712.07237oai:cds.cern.ch:22989722017-12-19
spellingShingle hep-ph
Particle Physics - Phenomenology
Liu, Jia
Wang, Lian-Tao
Wang, Xiao-Ping
Xue, Wei
Exposing Dark Sector with Future Z-Factories
title Exposing Dark Sector with Future Z-Factories
title_full Exposing Dark Sector with Future Z-Factories
title_fullStr Exposing Dark Sector with Future Z-Factories
title_full_unstemmed Exposing Dark Sector with Future Z-Factories
title_short Exposing Dark Sector with Future Z-Factories
title_sort exposing dark sector with future z-factories
topic hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.97.095044
http://cds.cern.ch/record/2298972
work_keys_str_mv AT liujia exposingdarksectorwithfuturezfactories
AT wangliantao exposingdarksectorwithfuturezfactories
AT wangxiaoping exposingdarksectorwithfuturezfactories
AT xuewei exposingdarksectorwithfuturezfactories