The search for electroweak-scale right-handed neutrinos and mirror charged leptons through like-sign dilepton signals
Shreyashi Chakdar, K. Ghosh, V. Hoang, P. Q. Hung, S. Nandi

TL;DR
This paper investigates the potential to detect electroweak-scale right-handed neutrinos and mirror charged leptons at the LHC through like-sign dilepton signals, testing the mirror model's predictions and constraints from existing data.
Contribution
It explores collider signatures of the EW-scale $ u_R$ model, focusing on like-sign dilepton signals and the potential for direct seesaw mechanism tests at the LHC.
Findings
Constraints from 8 TeV LHC data on the model.
Prospects for observing like-sign dileptons at 13 TeV.
Possible detection of displaced vertices depending on Yukawa couplings.
Abstract
The existence of tiny neutrino masses at a scale more than a million times smaller than the lightest charged fermion mass, namely the electron, and their mixings can not be explained within the framework of the exceptionally successful Standard Model. There are four ideas that has been proposed to explain the tiny neutrino masses. These include the see-saw mechanism with a right handed neutrino at the GUT scale, and this is the most elegant mechanism. The other mechanisms are radiatively generated neutrino masses, the neutrino mass arising from a 2nd Higgs doublet having a tiny VEV and coupling only to the neutrinos, and finally the mirror model or simply the EW-scale model. The mirror model has new quarks and leptons of opposite chirality at the electroweak scale (for the same Standard Model gauge symmetry ) compared to what we have for the Standard…
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Taxonomy
TopicsComputational Physics and Python Applications · Dark Matter and Cosmic Phenomena · Cosmology and Gravitation Theories
