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Quarkonium results from LHCb

The mechanism for the production of quarkonia in hadronic collisions is not yet completely understood. It is well kown that the LO Colour Singlet Model (CSM) leads to predictions of the cross-sections which are in disagreement with the osbervations at High $P_T$. New theoretical approaches have been...

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Autor principal: Sabatino, Giovanni
Lenguaje:eng
Publicado: 2012
Materias:
Acceso en línea:http://cds.cern.ch/record/1460481
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author Sabatino, Giovanni
author_facet Sabatino, Giovanni
author_sort Sabatino, Giovanni
collection CERN
description The mechanism for the production of quarkonia in hadronic collisions is not yet completely understood. It is well kown that the LO Colour Singlet Model (CSM) leads to predictions of the cross-sections which are in disagreement with the osbervations at High $P_T$. New theoretical approaches have been proposed in recent years. For example, the Non-Relativistic QCD factorisation formalism, in which Colour Octet diagrams are introduced. Another approach consists in extending the computation of the cross-sections in Colour Singlet Model up to the NNLO. In the Colour Evaporation Model (CEM) instead, the probability of forming a specific quarkonium state is assumed to be independent of the color of the $Q\bar{Q}$ pair. The debate is still open and experimental confirmations from the LHC experiments are needed to determine the reliability of the proposed models. Open charm can be produced in p-p collisions in association to a $J/\psi$ meson or in association to another open charm hadron. Predictions for the production cross-sections exist and are given by the LO perturbative QCD, where calculations are made for the processes $gg \rightarrow J/\psi J/\psi$, $gg \rightarrow J/\psi c\bar{c}$ and $gg |\rightarrow c\bar{c}c\bar{c}$. These predictions are affected by uncertainties that can amount to a factor of two due to the selection of the $\alpha_s$ scale. In p-p collisions contributions from other mechanisms are possible, such as Double Parton Scattering (DPS) in which the factorisation of the two PDF is assumed, or the intrinsic charm content of the proton (IC). Since such theories lead to different predictions for double charm (onium) cross-sections, experimental results from the LHC can give helpful hints and strong indications.
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institution Organización Europea para la Investigación Nuclear
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publishDate 2012
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spelling cern-14604812019-09-30T06:29:59Zhttp://cds.cern.ch/record/1460481engSabatino, GiovanniQuarkonium results from LHCbParticle Physics - ExperimentThe mechanism for the production of quarkonia in hadronic collisions is not yet completely understood. It is well kown that the LO Colour Singlet Model (CSM) leads to predictions of the cross-sections which are in disagreement with the osbervations at High $P_T$. New theoretical approaches have been proposed in recent years. For example, the Non-Relativistic QCD factorisation formalism, in which Colour Octet diagrams are introduced. Another approach consists in extending the computation of the cross-sections in Colour Singlet Model up to the NNLO. In the Colour Evaporation Model (CEM) instead, the probability of forming a specific quarkonium state is assumed to be independent of the color of the $Q\bar{Q}$ pair. The debate is still open and experimental confirmations from the LHC experiments are needed to determine the reliability of the proposed models. Open charm can be produced in p-p collisions in association to a $J/\psi$ meson or in association to another open charm hadron. Predictions for the production cross-sections exist and are given by the LO perturbative QCD, where calculations are made for the processes $gg \rightarrow J/\psi J/\psi$, $gg \rightarrow J/\psi c\bar{c}$ and $gg |\rightarrow c\bar{c}c\bar{c}$. These predictions are affected by uncertainties that can amount to a factor of two due to the selection of the $\alpha_s$ scale. In p-p collisions contributions from other mechanisms are possible, such as Double Parton Scattering (DPS) in which the factorisation of the two PDF is assumed, or the intrinsic charm content of the proton (IC). Since such theories lead to different predictions for double charm (onium) cross-sections, experimental results from the LHC can give helpful hints and strong indications.LHCb-PROC-2012-027CERN-LHCb-PROC-2012-027oai:cds.cern.ch:14604812012-07-09
spellingShingle Particle Physics - Experiment
Sabatino, Giovanni
Quarkonium results from LHCb
title Quarkonium results from LHCb
title_full Quarkonium results from LHCb
title_fullStr Quarkonium results from LHCb
title_full_unstemmed Quarkonium results from LHCb
title_short Quarkonium results from LHCb
title_sort quarkonium results from lhcb
topic Particle Physics - Experiment
url http://cds.cern.ch/record/1460481
work_keys_str_mv AT sabatinogiovanni quarkoniumresultsfromlhcb