Enhancing charge ratio sensitivity to hadronization effects via jet selections on resolved SoftDrop splitting
Liliana Apolin\'ario, Raghav Kunnawalkam Elayavalli, Nuno Olavo, Madureira

TL;DR
This paper enhances the sensitivity of charge ratio measurements to hadronization effects in jets by applying a novel jet selection based on the resolved SoftDrop splitting, providing a new probe of non-perturbative QCD phenomena.
Contribution
It introduces a new jet selection method based on the resolved SoftDrop splitting to improve the detection of hadronization effects in jet substructure analyses.
Findings
Improved sensitivity of charge correlation ratio to hadronization effects.
Demonstrated the effectiveness of the new jet selection in probing non-perturbative scales.
Provides a novel approach to study QCD hadronization using jet substructure.
Abstract
The study of Quantum Chromodynamics (QCD) at ultra-relativistic energies can be performed in a controlled environment through lepton-hadron deep inelastic scatterings. In such collisions, the high-energy partonic emissions that follow from the ejected hard partons are accurately described by perturbative QCD. However, the lower energy scales at which quarks and gluons experience colour confinement, i.e. hadronization mechanism, fall outside the validity regions for perturbative calculations, requiring phenomenological models tuned to data to describe it. As such, hadronization physics cannot be currently derived from first principles alone. Monte Carlo event generators are useful tools to describe these processes as they simulate both the perturbative and the non-perturbative interactions, with model-dependent energy scales that control parton dynamics. This work employs jets -…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Particle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions
