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Search for electroweak production of charginos and neutralinos at $\sqrt{s}$ = 13 TeV in final states containing hadronic decays of WW, WZ, or WH and missing transverse momentum

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abstract

This Letter presents a search for direct production of charginos and neutralinos via electroweak interactions. The results are based on data from proton-proton collisions at a center-of-mass energy of 13 TeV collected with the CMS detector at the LHC, corresponding to an integrated luminosity of 137 fb$^{-1}$. The search considers final states with large missing transverse momentum and pairs of hadronically decaying bosons WW, WZ, and WH, where H is the Higgs boson. These bosons are identified using novel algorithms. No significant excess of events is observed relative to the expectations from the standard model. Limits at the 95% confidence level are placed on the cross section for production of mass-degenerate wino-like supersymmetric particles $\tilde{\chi}_1^\pm$ and $\tilde{\chi}_2^0$, and mass-degenerate higgsino-like supersymmetric particles $\tilde{\chi}_1^\pm$, $\tilde{\chi}_2^0$, and $\tilde{\chi}_3^0$. In the limit of a nearly-massless lightest supersymmetric particle $\tilde{\chi}_1^0$, wino-like particles with masses up to 870 and 960 GeV are excluded in the cases of $\tilde{\chi}_2^0$ $\to$ Z$\tilde{\chi}_1^0$ and $\tilde{\chi}_2^0$ $\to$ H$\tilde{\chi}_1^0$, respectively, and higgsino-like particles are excluded between 300 and 650 GeV.

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representative citing papers

Closing in on singly charged scalars

hep-ph · 2025-06-05 · conditional · novelty 6.0

For a benchmark singly charged scalar that decays to leptons plus invisible particles, LHC data still allow masses above about 185 GeV and in a window near 80-125 GeV, and a boosted-decision-tree search could probe these regions more efficiently than standard cut-based analyses.

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  • Closing in on singly charged scalars hep-ph · 2025-06-05 · conditional · none · ref 4 · internal anchor

    For a benchmark singly charged scalar that decays to leptons plus invisible particles, LHC data still allow masses above about 185 GeV and in a window near 80-125 GeV, and a boosted-decision-tree search could probe these regions more efficiently than standard cut-based analyses.