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February 28, 2026International Journal of Modern Physics D0 citations

Higgs boson decay anomalies indicative of deviations from the predictions of the Standard Model of particle physics

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RSRobert Folkenberg Siro

Key Points

  • This research aims to investigate the viability of a fourth-family neutrino model under LHC constraints and its implications for Higgs boson decays.
  • Studied fourth-family neutrino’s invisible modes using LHC experimental data.
  • Adopted diphoton invariant mass search methodology for signal reconstruction.
  • Analyzed the effects of suppressed Yukawa couplings in the context of the Standard Model.
  • Considered cosmological constraints on heavy fourth-family neutrinos.
  • Demonstrated how suppressed Yukawa couplings can satisfy Higgs decay constraints.
  • Identified BSM suppression related to the fourth-family neutrino scenario.
  • Showed that heavy fourth-family neutrinos may contribute less to Higgs decays than expected.

Abstract

The viability of the fourth-family model under the current Large Hadron Collider (LHC) experimental constraints on the invisible mode of the fourth-family neutrino was studied, with an illustration that suppressed Yukawa couplings for fourth-family quarks and leptons can simultaneously satisfy the bounds of invisible Higgs decay while producing the observed diphoton decay rate. The traditional diphoton invariant mass search methodology for LHC data was adopted in the reconstruction of the Standard Model (SM) signal as a baseline for studying the potential beyond the Standard Model (BSM) physics suppression. The reconstructed signal was assessed, illustrating the BSM suppression associated with the hypothetical scenario of the fourth-family neutrino and the associated cosmological constraints on the adopted model. To reconcile the existence of heavy fourth-family neutrinos with experimental constraints that limit the possible contributions from the fourth-family at the LHC, our analysis incorporated suppressed Yukawa couplings and decoupling effects within the theoretical framework of the nonbaryonic Dark Matter (DM) of the universe, considering that heavy fermions may contribute less than naively expected if their masses are close to or beyond the current collider limits.

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Cite This Study

Robert Folkenberg Siro (2026) studied this question.

synapsesocial.com/papers/69a286b80a974eb0d3c01d56https://doi.org/10.1142/s0218271825410056
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