$U(1)'$ extensions of the $\mu \nu$SSM
J. A. Aguilar-Saavedra, I. Lara, D. E. Lopez-Fogliani, C. Munoz

TL;DR
This paper explores extensions of the $$-nuSSM with an added $U(1)'$ gauge group, analyzing their theoretical structure, anomaly cancellation, and rich phenomenology including new particles, dark matter candidates, and experimental constraints.
Contribution
It introduces the U$ u$SSM model with a $U(1)'$ gauge symmetry, detailing anomaly cancellation, exotic quarks, and potential dark matter candidates, expanding the phenomenological landscape of the $ u$SSM.
Findings
Models include exotic vector-like quarks and singlets with distinct $U(1)'$ charges.
The $Z'$ boson mass and mixing are constrained by experiments.
Potential signals include $Z'$ decays to sparticles and dark matter interactions.
Abstract
In the SSM, the presence of -parity violating couplings involving right-handed (RH) neutrinos solves simultaneously the - and -problems. We explore extensions of the SSM adding a gauge group, which provides the RH neutrinos with a non-vanishing charge. In these models, dubbed USSM, the anomaly cancellation conditions impose the presence of exotic quarks in the spectrum that are vector-like under the standard model (SM) gauge group: either three pairs quark singlets, or a pair of quark singlets together with a pair of quark doublets. Several extra singlets under the SM group can also be present, with the charges making distinctions among them, and therefore allowing different types of couplings. Some of these singlets dynamically generate Majorana masses for the RH neutrinos, and others can be candidates for dark matter. The…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions · Neutrino Physics Research
