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Probing the doubly-charged Higgs with Muonium to Antimuonium Conversion Experiment
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abstract
The spontaneous muonium-to-antimuonium conversion is one of the interesting charged lepton flavor violation processes. MACE is the next generation experiment to probe such a phenomenon. In models with a triplet Higgs to generate neutrino masses, such as Type-II seesaw and its variant, this process can be induced by the doubly-charged Higgs contained in it. In this article, we study the prospect of MACE to probe these models via the muonium-to-antimuonium transitions. After considering the limits from $\mu^+ \rightarrow e^+ \gamma $ and $\mu^+ \rightarrow e^+ e^- e^+$, we find that MACE could probe a parameter space for the doubly-charged Higgs which is beyond the reach of LHC and other flavor experiments.
Forward citations
Cited by 2 Pith papers
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Probing flavor-diagonal couplings of doubly-charged scalar at low and high energies
Flavor-diagonal couplings of a TeV-scale right-handed doubly-charged scalar in the LRSM could be probed down to ~10^-2 by combining low-energy precision measurements with future lepton colliders.
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Probing Type II Seesaw Leptogenesis Through Lepton Flavor Violation
A scan over 3σ neutrino parameters yields the most conservative lower bounds on the triplet-Higgs cubic coupling from μ→eγ, μ→3e, and μ-e conversion.
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