Identified Hadron Production at Hadron Colliders in Next-to-Next-to-Leading-Order QCD

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Main Authors: Czakon, Michał, Generet, Terry, Mitov, Alexander, Poncelet, Rene
Format: Preprint
Published: 2025
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author Czakon, Michał
Generet, Terry
Mitov, Alexander
Poncelet, Rene
author_facet Czakon, Michał
Generet, Terry
Mitov, Alexander
Poncelet, Rene
contents In this work we calculate for the first time the next-to-next-to leading order (NNLO) QCD corrections to identified hadron production at hadron colliders. The inclusion of the NNLO correction has an important impact on all observables considered in this work. Higher order corrections reduce scale uncertainty and in almost all cases are moderate. Overall, good perturbative convergence is observed across kinematics and observables. The uncertainty due to missing higher orders is relatively small and, in many cases, smaller than the experimental uncertainty. The largest source of theoretical uncertainty at present is from the knowledge of the non-perturbative parton-to-hadron fragmentation functions (FF), which dwarfs the scale uncertainty in most kinematic ranges. The inclusion of NNLO corrections demonstrates the precision studies potential of this class of observables. To fully realize this potential, however, a new generation of improved fragmentation functions may be needed. The results of the present work will enable global fits of FF with NNLO precision.
format Preprint
id arxiv_https___arxiv_org_abs_2503_11489
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Identified Hadron Production at Hadron Colliders in Next-to-Next-to-Leading-Order QCD
Czakon, Michał
Generet, Terry
Mitov, Alexander
Poncelet, Rene
High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Experiment
Nuclear Theory
In this work we calculate for the first time the next-to-next-to leading order (NNLO) QCD corrections to identified hadron production at hadron colliders. The inclusion of the NNLO correction has an important impact on all observables considered in this work. Higher order corrections reduce scale uncertainty and in almost all cases are moderate. Overall, good perturbative convergence is observed across kinematics and observables. The uncertainty due to missing higher orders is relatively small and, in many cases, smaller than the experimental uncertainty. The largest source of theoretical uncertainty at present is from the knowledge of the non-perturbative parton-to-hadron fragmentation functions (FF), which dwarfs the scale uncertainty in most kinematic ranges. The inclusion of NNLO corrections demonstrates the precision studies potential of this class of observables. To fully realize this potential, however, a new generation of improved fragmentation functions may be needed. The results of the present work will enable global fits of FF with NNLO precision.
title Identified Hadron Production at Hadron Colliders in Next-to-Next-to-Leading-Order QCD
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Experiment
Nuclear Theory
url https://arxiv.org/abs/2503.11489