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An Overview of the COMET Experiment and its Recent Progress
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abstract
Forbidden in the Standard Model, Charged Lepton Flavour Violation is a strong probe for New Physics. The COMET Experiment will measure one of these processes: that of COherent Muon to Electron Transitions, where a muon converts to an electron in the presence of a nucleus without the emission of any neutrinos. COMET aims to improve the current limit on this process by four orders of magnitude. Being built in two phases at J-PARC, Tokai, Japan, COMET will first take data in 2018, where it should achieve a factor 100 improvement. This report gives an overview of $\mu$-$e$ conversion and the COMET experiment as well as a summary of the recent progress in construction and design.
Forward citations
Cited by 4 Pith papers
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Taming flavour violation in the Inverse Seesaw
New eta-based parametrisations of the ISS(3,3) show that Z-penguin flavour violation can reveal non-degenerate heavy sterile mixing even when radiative decays are absent.
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High-energy cLFV at $\mu$TRISTAN: HNL extensions of the Standard Model
In HNL extensions of the Standard Model, mu+e- collisions at muTRISTAN could discover e-tau and mu-tau charged lepton flavour violation with sensitivity orders of magnitude beyond low-energy experiments and FCC-ee.
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Flavour and precision probes of a class of scotogenic models
Full next-to-leading-order corrections to leptonic Z and Higgs decays are derived for the T1-2-A scotogenic model, and the resulting cLFV and electroweak observables are scanned to identify future collider probes.
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Global analysis of a minimally extended scotogenic model
Numerical scan of minimally extended scotogenic model constrains fermionic DM to 120-350 GeV and CP-odd scalar to 350-600 GeV while noting DESI BAO data may rule out inverted neutrino hierarchy.
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