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Identified-particle production in Xe + Xe collisions at sNN=5.44 TeV using a multiphase transport model

2018/12/31 by Rutuparna Rath, R. Rath, S. Tripathy +5
Engineering · Physics and Astronomy · #Baryon #Centrality #Combinatorics #Hadron #High-Energy Particle Collisions Research #Nuclear reactor physics and engineering #Particle physics #Physics #Production (economics) #Quantum Chromodynamics and Particle Interactions #Quark–gluon plasma #hep-ex #hep-ph #nucl-ex #nucl-th

paper · pdf · doi:10.1103/physrevc.99.064903

published as Phys. Rev. C 99, 064903 (2019) · Same as published version in Phys. Rev. C

openalex created_date 2018/12/22 · openalex publication_date 2019/06/17 · arxiv created 2019/06/18 · arxiv updated 2019/06/19 · openalex updated_date 2026/08/05

Abstract

Xe+Xe collisions at relativistic energies provide us with an opportunity to study a possible system with deconfined quarks and gluons, whose size is in between those produced by p+p and Pb+Pb collisions. In the present work, we have used a multiphase transport (AMPT) model with nuclear deformation to study the identified particle production, such as (\ensuremathπ++\ensuremathπ^\ensuremath-), (K++K^\ensuremath-), Ks0, (p+p), \ensuremathφ, and (\mathrm\ensuremathΛ+\mathrm\ensuremathΛ) in Xe+Xe collisions at √sNN=5.44\phantom\rule0.28em0exTeV. We study the pT spectra, integrated yield, and pT-differential and pT-integrated particle ratios to (\ensuremathπ++\ensuremathπ^\ensuremath-) and (K++K^\ensuremath-) as a function of collision centrality. The particle ratios are focused on strange to nonstrange ratios and baryon to meson ratios. The effect of deformations has also been highlighted by comparing our results to the nondeformation case. We have also compared the results from AMPT string melting and the AMPT default version to explore possible effects of the coalescence mechanism. We observe that the differential particle ratios show strong dependence on centrality while the integrated particle ratios show no centrality dependence. We give a thermal model estimation of chemical freeze-out temperature and the Boltzmann-Gibbs Blast Wave analysis of kinetic freeze-out temperature and collective radial flow in Xe+Xe collisions at √sNN=5.44\phantom\rule0.28em0exTeV.

Citations