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arXiv · 2607.15356

Multiboson Signatures of Doubly Charged Scalars at a Same-Sign Muon Collider

Abstract

We investigate the sensitivity of a same-sign $μ^+μ^+$ collider to doubly charged scalars in the Type-II seesaw framework, focusing on the regime in which the doubly charged scalar decays dominantly into same-sign $W$-boson pairs. Motivated by the $μ$TRISTAN proposal, for a benchmark we consider a degenerate triplet spectrum at a center-of-mass energy of $2~{\rm TeV}$ and an integrated luminosity of $1~{\rm ab}^{-1}$. The signal process is studied in the fully hadronic $W$-decay mode, leading to a characteristic $μ^+μ^+ + 8j$ final state. We develop a cut-based analysis based on high jet multiplicity and global hadronic $W$ reconstruction, and then improve its sensitivity with a multivariate strategy exploiting reconstructed $W$ observables, global event kinematics, multi-boson variables and spectator-muon information. The best-performing setup reaches a $2σ$ sensitivity level for doubly charged scalar masses up to $425-430~{\rm GeV}$, extending the cut-based reach by a few tens of GeV. This indicates an improvement over the current LHC coverage, while also providing an independent probe based on a qualitatively different production mode and collider environment.

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Mariana Frank, Benjamin Fuks, Chayan Majumdar, Supriya Senapati. 2026-07-16. Multiboson Signatures of Doubly Charged Scalars at a Same-Sign Muon Collider. https://arxiv.org/abs/2607.15356

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