Anatomy of the $tthh$ Physics at HL-LHC
Abstract
The production at colliders contain rich information on the nature of Higgs boson. In this article, we systematically studied its physics at High-Luminosity Large Hadron Collider (HL-LHC), using exclusive channels with multiple () -jets and one lepton (), multiple () -jets and opposite-sign di-lepton (), same-sign di-lepton (SS2), multiple leptons (multi-), and di-tau resonance (). The scenarios analyzed include: (1) the production in Standard Model; (2) the production mediated by anomalous cubic Higgs self-coupling and contact interaction; (3) heavy Higgs () production with ; and (4) pair production of fermionic top partners () with . To address the complication of event topologies and the mess of combinatorial backgrounds, a tool of Boosted-Decision-Tree was applied in the analyses. The and SS2 analyses define the two most promising channels, resulting in slightly different sensitivities. For non-resonant production, a combination of these exclusive analyses allows for its measurment in the SM with a statistical significance (with ), and may assist partially breaking the sensitivity degeneracy w.r.t. the cubic Higgs self-coupling, a difficulty usually thought to exist in gluon fusion di-Higgs analysis at HL-LHC. These sensitivities were also projected to future hadron colliders at 27 TeV and 100 TeV. For resonant productions, the heavy Higgs boson in type II Two-Higgs-Doublet-Model could be efficiently searched for between the mass thresholds and even beyond that, for relatively small , while the fermionic top partners in composite Higgs models could be probed for up to TeV and TeV, for Br and , respectively.
Keywords
Cite
@article{arxiv.1905.03772,
title = {Anatomy of the $tthh$ Physics at HL-LHC},
author = {Lingfeng Li and Ying-Ying Li and Tao Liu},
journal= {arXiv preprint arXiv:1905.03772},
year = {2020}
}
Comments
30 pages, 12 figures