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Distinguishing a pseudoscalar from a vector ttˉt\bar t resonance with top-quark spin correlations at the HL-LHC

Published 10 Sep 2026 in hep-ph | (2609.11641v1)

Abstract: Top-quark spin correlations provide a direct probe of the quantum numbers of a resonance decaying to ttˉt\bar t. We compare a CP-odd type-II two-Higgs-doublet-model pseudoscalar AA with a spin-1 leptophobic topcolor $Z&#39;$ in the dilepton channel. The two hypotheses differ in the parton-level helicity correlation by Δchel0.43Δc_{\rm hel}\simeq0.43, nearly independently of mass, and neutrino-weighted reconstruction preserves this separation with an effective dilution factor of about 0.66. At 400 and 800 GeV, the pseudoscalar normalization is anchored to CMS HIG-22-013 coupling limits, while the $Z&#39;$ rate is matched to the pseudoscalar so that the comparison primarily tests spin structure. The leading-order ttˉt\bar t-only projection gives expected separations of 2.27 and 2.74 standard deviations at 3000fb<sup>13000\,{\rm fb}<sup>{-1}. Equalizing the selected signal yields gives pure spin-shape separations of 1.86 and 2.70 standard deviations. Profiling a Gaussian-constrained Standard Model chelc_{\rm hel}-shape nuisance gives 2.07 and 2.63 standard deviations for an optimistic sideband benchmark, or 1.67 and 2.26 for a weaker constraint. A local fixed-template extrapolation corresponds to five-standard-deviation discrimination at couplings about 22\% and 16\% above the reference values. A 1500 GeV g=1g=1 point is shown separately. The reach is limited by the sub-percent signal fraction and control of the mass-dependent Standard Model spin shape, rather than by the intrinsic resonance-spin separation.

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