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Muon collider probes of Majorana neutrino dipole moments and masses

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arxiv 2409.02721 v2 pith:F6WJ2LBC submitted 2024-09-04 hep-ph astro-ph.SRhep-ex

Muon collider probes of Majorana neutrino dipole moments and masses

classification hep-ph astro-ph.SRhep-ex
keywords boundscollidermuonneutrinodipolelambdaleptonmajorana
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Majorana neutrinos may have transitional dipole moments, which violate lepton number as well as lepton flavour. We estimate the sensitivity of future colliders to the electron-muon neutrino dipole moment, $\lambda_{e\mu}$, by considering same-sign dilepton final states. We find that hadron colliders, even the proposed FCC-hh, are sensitive only to $|\lambda_{e\mu}|\gtrsim 10^{-9}\mu_B$ (with $\mu_B$ the Bohr magneton), a value two-three orders of magnitude larger than current bounds from astrophysics and low-energy neutrino-scattering experiments. In the case of a future muon collider, we show that the sensitivity varies from $|\lambda_{e\mu}|\sim 5\cdot 10^{-9}\mu_B$ for energy $\sqrt{s}\simeq 3$ TeV, to $\sim 10^{-12}\mu_B$ for $\sqrt{s}\simeq 50$ TeV, matching the current laboratory bounds for $\sqrt{s}\simeq 30$ TeV. The singular advantage of the muon collider signal would be a direct, clean identification of lepton number and flavour violation. We also show that a muon collider would improve by orders of magnitude the direct bounds on $m_{e\mu}$ and $m_{\mu\mu}$, two of the entries of the Majorana neutrino mass matrix. These bounds could be as strong as $\sim 50$ keV, still far above the neutrino mass scale.

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Cited by 2 Pith papers

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  1. New Avenues of Heavy Neutral Lepton at Muon Collider

    hep-ph 2026-06 unverdicted novelty 4.0

    In a U(1) gauged seesaw model, Z'Z' fusion processes at muon colliders enable HNL pair production via Z'Z'→H→NN and Z'Z'→NN, yielding LNV signals not suppressed by Higgs mixing.

  2. Why detect forward muons at a muon collider

    hep-ph 2024-10 unverdicted novelty 4.0

    Forward muon detection at muon colliders enables Higgs property measurements, invisible new physics searches via Higgs portal, and characterization of vector boson scattering through angular correlations.