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arXiv · 1405.5910

Measuring the Higgs Self-Coupling Constant at a Multi-TeV Muon Collider

Abstract

A lepton collider in the multi-TeV range has the potential to measure the trilinear Higgs self-coupling constant $λ_{hhh}$ via the W-fusion mode $\ell^+\ell^- \rightarrow ν_\ell \barν_\ell h h$. In this paper we do a generator-level study to explore how center-of-mass energy spread, cone size, tracking resolution, and collision energy range affect how precisely a muon collider can measure $λ_{hhh}$ in comparison to an $e^+e^-$ collider. The smaller spread in center-of-mass energy and higher energy range of a muon collider improve cross section while the larger cone required to reduce beam-induced background hinders detection of double-Higgs events. Our results motivate a more detailed study of a multi-TeV muon collider and innovative detector and analysis technologies required for background rejection and precision measurement.

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Alexander Conway, Hans Wenzel, Ronald Lipton, Estia Eichten. 2014-05-28. Measuring the Higgs Self-Coupling Constant at a Multi-TeV Muon Collider. https://arxiv.org/abs/1405.5910

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