A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches

Abstract A highly bino-like Dark Matter (DM), which is the Lightest Supersymmetric Particle (LSP), could be motivated by the stringent upper bounds on the DM direct detection rates. This is especially so when its mass is around or below 100 GeV for which such a bound tends to get most severe. Requir...

Full description

Bibliographic Details
Main Authors: Waleed Abdallah, AseshKrishna Datta, Subhojit Roy
Format: Article
Language:English
Published: SpringerOpen 2021-04-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP04(2021)122
id doaj-5386f350cab7419d96531fc9fa95ac5f
record_format Article
spelling doaj-5386f350cab7419d96531fc9fa95ac5f2021-04-18T11:06:58ZengSpringerOpenJournal of High Energy Physics1029-84792021-04-012021417210.1007/JHEP04(2021)122A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searchesWaleed Abdallah0AseshKrishna Datta1Subhojit Roy2Harish-Chandra Research Institute, HBNIHarish-Chandra Research Institute, HBNIHarish-Chandra Research Institute, HBNIAbstract A highly bino-like Dark Matter (DM), which is the Lightest Supersymmetric Particle (LSP), could be motivated by the stringent upper bounds on the DM direct detection rates. This is especially so when its mass is around or below 100 GeV for which such a bound tends to get most severe. Requiring not so large a higgsino mass parameter, that would render the scenario reasonably ‘natural’, prompts such a bino-like state to be relatively light. In the Minimal Supersymmetric Standard Model (MSSM), in the absence of comparably light scalars, such an excitation, if it has to be a thermal relic, is unable to meet the stringent experimental upper bound on its abundance unless its self-annihilation hits a funnel involving either the Z-boson or the Standard Model (SM)-like Higgs boson. We demonstrate that, in such a realistic situation, a highly bino-like DM of the popular Z 3-symmetric Next-to-Minimal Supersymmetric Standard Model (NMSSM) is viable over an extended range of its mass, from our targeted maximum in the vicinity of the mass of the top quark down to about 30 GeV. This is facilitated by the presence of comparably light singlet-like states that could serve as funnel (scalars) and/or coannihilating (singlino) states even as the bino-like LSP receives a minimal (but optimal) tempering triggered by suitably light higgsino states that, in the first place, evade stringent lower bounds on their masses that can be derived from the Large Hadron Collider (LHC) experiments only in the presence of a lighter singlino-like state. An involved set of blind spot conditions is derived for the DM direct detection rates by considering for the very first time the augmented system of neutralinos comprising of the bino, the higgsinos and the singlino which highlights the important roles played by the NMSSM parameters ‘λ’ and tan β in delivering a richer phenomenology.https://doi.org/10.1007/JHEP04(2021)122Supersymmetry Phenomenology
collection DOAJ
language English
format Article
sources DOAJ
author Waleed Abdallah
AseshKrishna Datta
Subhojit Roy
spellingShingle Waleed Abdallah
AseshKrishna Datta
Subhojit Roy
A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
Journal of High Energy Physics
Supersymmetry Phenomenology
author_facet Waleed Abdallah
AseshKrishna Datta
Subhojit Roy
author_sort Waleed Abdallah
title A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
title_short A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
title_full A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
title_fullStr A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
title_full_unstemmed A relatively light, highly bino-like dark matter in the Z 3-symmetric NMSSM and recent LHC searches
title_sort relatively light, highly bino-like dark matter in the z 3-symmetric nmssm and recent lhc searches
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2021-04-01
description Abstract A highly bino-like Dark Matter (DM), which is the Lightest Supersymmetric Particle (LSP), could be motivated by the stringent upper bounds on the DM direct detection rates. This is especially so when its mass is around or below 100 GeV for which such a bound tends to get most severe. Requiring not so large a higgsino mass parameter, that would render the scenario reasonably ‘natural’, prompts such a bino-like state to be relatively light. In the Minimal Supersymmetric Standard Model (MSSM), in the absence of comparably light scalars, such an excitation, if it has to be a thermal relic, is unable to meet the stringent experimental upper bound on its abundance unless its self-annihilation hits a funnel involving either the Z-boson or the Standard Model (SM)-like Higgs boson. We demonstrate that, in such a realistic situation, a highly bino-like DM of the popular Z 3-symmetric Next-to-Minimal Supersymmetric Standard Model (NMSSM) is viable over an extended range of its mass, from our targeted maximum in the vicinity of the mass of the top quark down to about 30 GeV. This is facilitated by the presence of comparably light singlet-like states that could serve as funnel (scalars) and/or coannihilating (singlino) states even as the bino-like LSP receives a minimal (but optimal) tempering triggered by suitably light higgsino states that, in the first place, evade stringent lower bounds on their masses that can be derived from the Large Hadron Collider (LHC) experiments only in the presence of a lighter singlino-like state. An involved set of blind spot conditions is derived for the DM direct detection rates by considering for the very first time the augmented system of neutralinos comprising of the bino, the higgsinos and the singlino which highlights the important roles played by the NMSSM parameters ‘λ’ and tan β in delivering a richer phenomenology.
topic Supersymmetry Phenomenology
url https://doi.org/10.1007/JHEP04(2021)122
work_keys_str_mv AT waleedabdallah arelativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
AT aseshkrishnadatta arelativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
AT subhojitroy arelativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
AT waleedabdallah relativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
AT aseshkrishnadatta relativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
AT subhojitroy relativelylighthighlybinolikedarkmatterinthez3symmetricnmssmandrecentlhcsearches
_version_ 1721522702409269248