Study of azimuthal anisotropy of (1S) mesons in pPb collisions at = 8.16 TeV
arXiv:2310.03233 · doi:10.1016/j.physletb.2024.138518
Abstract
The azimuthal anisotropy of (1S) mesons in high-multiplicity proton-lead collisions is studied using data collected by the CMS experiment at a nucleon-nucleon center-of-mass energy of 8.16 TeV. The (1S) mesons are reconstructed using their dimuon decay channel. The anisotropy is characterized by the second Fourier harmonic coefficients, found using a two-particle correlation technique, in which the (1S) mesons are correlated with charged hadrons. A large pseudorapidity gap is used to suppress short-range correlations. Nonflow contamination from the dijet background is removed using a low-multiplicity subtraction method, and the results are presented as a function of (1S) transverse momentum. The azimuthal anisotropies are smaller than those found for charmonia in proton-lead collisions at the same collision energy, but are consistent with values found for (1S) mesons in lead-lead interactions at a nucleon-nucleon center-of-mass energy of 5.02 TeV.
Replaced with the published version. Added the journal reference and the DOI. All the figures and tables can be found at http://cms-results.web.cern.ch/cms-results/public-results/publications/HIN-21-001 (CMS Public Pages)
References in corpus (10)
- An Introduction to PYTHIA 8.2
- Tuning PYTHIA 8.1: the Monash 2013 Tune
- Description and performance of track and primary-vertex reconstruction with the CMS tracker
- Observation of long-range near-side angular correlations in proton-lead collisions at the LHC
- Energy Loss and Flow of Heavy Quarks in Au+Au Collisions at sqrt(s_NN) = 200 GeV
- Precision luminosity measurement in proton-proton collisions at 13 TeV in 2015 and 2016 at CMS
- Long-range two-particle correlations of strange hadrons with charged particles in pPb and PbPb collisions at LHC energies
- Studies of charm and beauty hadron long-range correlations in pp and pPb collisions at LHC energies
- Quarkonium production in ultra-relativistic nuclear collisions: suppression vs. enhancement
- Model study on modification in small collision systems