Renormalization of a Standard Model Extension with a Dark Abelian Sector and Predictions for the W-Boson Mass
Stefan Dittmaier, Jonas Rehberg, Heidi Rzehak

TL;DR
This paper introduces a Dark Abelian Sector Model (DASM) extending the Standard Model with a dark sector, analyzing its impact on electroweak precision observables, and providing renormalization schemes and predictions for the W-boson mass.
Contribution
It develops a comprehensive renormalization framework for DASM and offers the first NLO prediction for the W-boson mass within this model.
Findings
DASM can influence electroweak precision measurements.
The model accommodates a second Higgs and Z' boson with specific parameterizations.
Predicted W-boson mass aligns with experimental data within the model's parameter space.
Abstract
The described Dark Abelian Sector Model (DASM) extends the Standard Model (SM) by a ``dark'' sector containing a spontaneously broken gauge group. Keeping this dark sector quite generic we only add one additional Higgs boson, one Dirac fermion, and right-handed SM-like neutrinos to the SM. Using the only two singlet operators of the SM with dimension less than 4 (the field-strength tensor and the SM Higgs mass operator ) as well as the right-handed neutrino fields we open up three portals to the dark sector. Dark sectors, such as the one of the DASM, that introduce an additional Higgs boson as well as an additional gauge boson can have a large influence on the predictions for electroweak precision observables and even accommodate possible dark matter candidates. We consider one of the two Higgs bosons to be the known…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Computational Physics and Python Applications · Dark Matter and Cosmic Phenomena
