Probing Vector-Like Quarks at a future Muon-Proton Collider
arXiv:2512.11471
Abstract
This study investigates the discovery potential of a singly produced vector-like top quark () at a future muon-proton collider with center-of-mass energies of 5.29, 6.48, and 9.16~TeV using a model-independent effective Lagrangian consistent with CKM and electroweak constraints. The quark predominantly decays into , with production cross sections peaking at 9.16~TeV and decreasing above 3~TeV due to parton distribution functions (PDFs) and phase-space suppression. Sensitivity is enhanced through optimized kinematic selections, with the hadronic channel providing higher event rates due to the larger hadronic branching fraction of the boson, while the leptonic channel offers a cleaner background environment. At an integrated luminosity of 3000~fb, a 3~TeV quark can be observed with statistical significances of and in the hadronic and leptonic channels, respectively. A machine-learning analysis employing a Boosted Decision Tree (BDT) and a Multi-Layer Perceptron (MLP) is performed at 9.16~TeV for ~GeV using and as performance metrics. The MLP consistently outperforms the BDT, achieving a hadronic purity gain of approximately 2.62 while maintaining stable performance across all luminosities. These results demonstrate that a future muon-proton collider can probe vector-like quark masses up to approximately 3.5~TeV, significantly extending the search for physics beyond the Standard Model.
13 figures, 10 tables, 28 pages