English

Baryon diffusion coefficient of the strongly interacting medium

Nuclear Theory 2023-05-18 v1 High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment

Abstract

We propose that the transverse momentum (pTp_T) differential splitting of directed flow (Δv1\Delta v_1) between proton and anti-proton can serve as a sensitive observable to extract the baryon diffusion coefficient (κB\kappa_B) of the hot and dense strongly interacting matter produced in relativistic heavy ion collisions. We use relativistic dissipative hydrodynamics framework with Glauber model based initial condition for the energy as well as baryon deposition that is calibrated to capture the rapidity dependence of charged particle multiplicity, net proton yield as well as the elusive v1v_1 splitting between proton and anti-proton. We employ the commonly used kinetic theory motivated ansatz: κB=CBnBT(13coth(μBT)nBTϵ+P)\kappa_B= C_B \frac{n_B}{T} \left( \frac{1}{3} \text{coth}\left(\frac{\mu_B}{T} \right) - \frac{n_BT}{\epsilon+P} \right) where nBn_B, ϵ\epsilon, PP, TT and μB\mu_B are baryon number density, energy density, pressure, temperature and baryon chemical potential respectively while CBC_B is an arbitrary constant which is largely unknown for the Quantum Chromodynamics (QCD) medium. We find that the variation of Δv1\Delta v_1 with pTp_T is strongly influenced by the choice of CBC_B. Further, we find that the recent STAR measurement of the centrality dependence of the rapidity slope of Δv1\Delta v_1 prefers 0.5<CB<1.50.5<C_B<1.5.

Keywords

Cite

@article{arxiv.2305.10371,
  title  = {Baryon diffusion coefficient of the strongly interacting medium},
  author = {Tribhuban Parida and Sandeep Chatterjee},
  journal= {arXiv preprint arXiv:2305.10371},
  year   = {2023}
}
R2 v1 2026-06-28T10:37:21.103Z