Improved constraints on Higgs boson self-couplings with quartic and cubic power dependencies of the cross section
Hai Tao Li, Zong-Guo Si, Jian Wang, Xiao Zhang, Dan Zhao

TL;DR
This paper refines the understanding of Higgs boson self-couplings by incorporating higher-order quantum corrections, leading to new functional forms of cross sections and tighter constraints on the trilinear coupling from LHC data.
Contribution
It introduces a specialized renormalization procedure accounting for quartic and cubic dependencies in Higgs self-coupling cross sections, improving the accuracy of experimental constraints.
Findings
Upper limit on H coupling reduced from 6.6 to 5.5
New functional forms for cross sections in gluon-gluon and vector boson fusion channels
Presented invariant mass distributions to aid experimental analysis
Abstract
Precise determination of the Higgs boson self-couplings is essential for understanding the mechanism underlying electroweak symmetry breaking. However, owing to the limited number of Higgs boson pair events at the LHC, only loose constraints have been established to date. Current constraints are based on the assumption that the cross section is a quadratic function of the trilinear Higgs self-coupling within the framework. Incorporating higher-order quantum corrections from virtual Higgs bosons would significantly alter this functional form, introducing new quartic and cubic power dependencies on the trilinear Higgs self-coupling. To derive this new functional form, we propose a specialized renormalization procedure that tracks all Higgs self-couplings at each calculation step. Additionally, we introduce renormalization constants for coupling modifiers within the …
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Quantum Chromodynamics and Particle Interactions · Particle physics theoretical and experimental studies
