Kinetic Mixing from Kaluza-Klein Modes: A Simple Construction for Portal Matter
George N. Wojcik

TL;DR
This paper introduces a minimal model using large extra dimensions to generate chiral Standard Model fermions and vector-like portal matter from a single dark bulk multiplet, simplifying the realization of kinetic mixing for dark matter.
Contribution
It presents a novel, simplified construction of KK portal matter that naturally produces chiral SM fermions and vector-like portal matter without complex Higgs sectors.
Findings
The model predicts lighter portal matter fields as potential first signatures of extra dimensions.
Unique collider signatures distinguish this model from conventional large extra dimension scenarios.
The approach simplifies the realization of kinetic mixing and dark sector phenomenology.
Abstract
The vector portal/kinetic mixing simplified model of dark matter, in which thermal dark matter of a mass ranging from a few MeV to a few GeV can be realized with a dark-sector , relies on a small kinetic mixing term between this dark and the Standard Model (SM) hypercharge. It is well-known that kinetic mixing of the right magnitude can be generated at one loop by the inclusion of "portal matter" fields which are charged under both the dark and the SM hypercharge, and it has been previously argued on phenomenological grounds that fermionic portal matter fields must exhibit a specific set of characteristics: They must be vector-like and have the same Standard Model group representations as existing SM fermions. A natural explanation for the presence of dark -charged copies of SM fermions would be to enlarge the dark gauge group and embed the SM and the portal…
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Taxonomy
TopicsDark Matter and Cosmic Phenomena · Cosmology and Gravitation Theories · High-Energy Particle Collisions Research
