English

A linearized Boltzmann--Langevin model for heavy quark transport in hot and dense QCD matter

Nuclear Theory 2018-12-12 v1

Abstract

In relativistic heavy-ion collisions, the production of heavy quarks at large transverse momenta is strongly suppressed compared to proton-proton collisions. In addition an unexpectedly large azimuthal anisotropy was observed for the emission of charmed hadrons in non-central collisions. Both observations pose challenges to the theoretical understanding of the coupling between heavy quarks and the quark-gluon plasma produced in these collisions. Transport models for the evolution of heavy quarks in a QCD medium offer the opportunity to study these effects - two of the most successful approaches are based on the linearized Boltzmann transport equation and the Langevin equation. In this work, we develop a hybrid transport model that combines the strengths of both of these approaches: heavy quarks scatter with medium partons using matrix-elements calculated in perturbative QCD, while between these discrete hard scatterings they evolve using a Langevin equation with empirical transport coefficients to capture the non-perturbative soft part of the interaction. With the hybrid transport model coupled to a state-of-the-art event-by-event bulk evolution model based on 2+1D relativistic viscous fluid dynamics, we study the azimuthal anisotropy and nuclear modification factor of heavy quarks in Pb+Pb collisions at s=5.02\sqrt{s} = 5.02 TeV. The parameters of our model are calibrated using a Bayesian analysis comparing to available DD-meson and BB-meson data at the LHC. Using the calibrated model, we study the implications on heavy-flavor transport properties and predict novel observables.

Keywords

Cite

@article{arxiv.1806.08848,
  title  = {A linearized Boltzmann--Langevin model for heavy quark transport in hot and dense QCD matter},
  author = {Weiyao Ke and Yingru Xu and Steffen A. Bass},
  journal= {arXiv preprint arXiv:1806.08848},
  year   = {2018}
}