Measurement of inclusive charged-particle jet production in pp and p-Pb collisions at √sNN=5.02 TeV
The ALICE collaboration. (2024). Measurement of inclusive charged-particle jet production in pp and p-Pb collisions at √sNN=5.02 TeV. Journal of High Energy Physics, 2024, Article 41. https://doi.org/10.1007/JHEP05(2024)041
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Journal of High Energy PhysicsAuthors
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2024Copyright
© CERN, for the beneft of the ALICE Collaboration. Article funded by SCOAP3
Measurements of inclusive charged-particle jet production in pp and p-Pb collisions at center-of-mass energy per nucleon-nucleon collision √sNN=5.02 TeV and the corresponding nuclear modification factor RchjetpPb are presented, using data collected with the ALICE detector at the LHC. Jets are reconstructed in the central rapidity region |ηjet|<0.5 from charged particles using the anti-kT algorithm with resolution parameters R=0.2, 0.3, and 0.4. The pT-differential inclusive production cross section of charged-particle jets, as well as the corresponding cross section ratios, are reported for pp and p-Pb collisions in the transverse momentum range 10<140 GeV/c and 10<160 GeV/c, respectively, together with the nuclear modification factor RchjetpPb in the range 10<140 GeV/c. The analysis extends the pT range of the previously-reported charged-particle jet measurements by the ALICE Collaboration. The nuclear modification factor is found to be consistent with one and independent of the jet resolution parameter with the improved precision of this study, indicating that the possible influence of cold nuclear matter effects on the production cross section of charged-particle jets in p-Pb collisions at √sNN=5.02 TeV is smaller than the current precision. The obtained results are in agreement with other minimum bias jet measurements available for RHIC and LHC energies, and are well reproduced by the NLO perturbative QCD POWHEG calculations with parton shower provided by PYTHIA8 as well as by JETSCAPE simulations.
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https://converis.jyu.fi/converis/portal/detail/Publication/243768385
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European Commission; Research Council of FinlandFunding program(s)
RIA Research and Innovation Action, H2020; Centre of Excellence, AoF
The content of the publication reflects only the author’s view. The funder is not responsible for any use that may be made of the information it contains.
Additional information about funding
European Research Council, Strong 2020 — Horizon 2020 (grant nos. 950692, 824093), European Union; Academy of Finland (Center of Excellence in Quark Matter) (grant nos. 346327, 346328), Finland.License
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