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November 20, 2025Reports on Progress in Physics0 citationsOpen Access

Search for heavy pseudoscalar and scalar bosons decaying to a top quark pair in proton-proton collisions at √s = 13 TeV

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CCCMS Collaboration

Key Points

  • An excess of data above background prediction indicates potential new physics.
  • Invariant mass of t-tbar system shows peak-dip structures due to scalar boson interference with the standard model.
  • Analysis based on proton-proton collision data from the CERN LHC with 138 fb−1 integrated luminosity shows consistent background predictions.
  • Upper limits were set on scalar bosons coupling with top quarks within a specified mass range, suggesting new particles may exist.

Abstract

Abstract A search for pseudoscalar or scalar bosons decaying to a top quark pair (tt) in final states with one or two charged leptons is presented. The analyzed proton-proton collision data was recorded at s = 13 TeV by the CMS experiment at the CERN LHC and corresponds to an integrated luminosity of 138 fb^-1. The invariant mass mₜt of the reconstructed tt system and variables sensitive to its spin and parity are used to discriminate against the standard model tt background. Interference between pseudoscalar or scalar boson production and the standard model tt continuum is included, leading to peak-dip structures in the mₜt distribution. An excess of the data above the background prediction, based on perturbative quantum chromodynamics (QCD) calculations, is observed near the kinematic tt production threshold, while good agreement is found for high mₜt. The data are consistent with the background prediction if the contribution from a simplified model of a color-singlet ¹S₀^1 tt quasi-bound state ₜ, inspired by nonrelativistic QCD, is added. Upper limits at 95% confidence level are set on the coupling between the pseudoscalar or scalar bosons and the top quark for boson masses in the range 365-1000 GeV, relative widths between 0. 5 and 25%, and two background scenarios with or without ₜ contribution.

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Cite This Study

CMS Collaboration (2025) studied this question.

synapsesocial.com/papers/6924f08cc0ce034ddc3505bbhttps://doi.org/10.1088/1361-6633/ae2207
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Also Consider

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  5. 5Observation of a pseudoscalar excess at the top quark pair production threshold2025 · 31 citations