Charge-Dependent Directed Flow in Symmetric Nuclear Collisions
Abstract
The directed flow () of identified hadrons (, and ) is studied in symmetric nuclear collisions (O+O, Cu+Cu, Ru+Ru, Au+Au, and U+U) at GeV using the string-melting version of a multiphase transport model with improved quark coalescence. The mid-rapidity -slope () and its charge-dependent splitting () between particles and anti-particles are investigated as a function of nuclear mass number () and collision centrality in both low- (0.22.0 GeV/) and high- (2.05.0 GeV/) regions. At low-, the -slope shows weak system-size dependence, while at high- strong system-size dependence is found and it becomes negative with nuclear mass number, reflecting the hard-soft asymmetry in particle production. The charge-dependent splitting reveals a striking baryon-meson dichotomy: baryon pairs ( and ) exhibit significant splitting that grows with system size, whereas meson pairs ( and ) show minimal splitting. The effect of final state hadronic interactions on the -slope is found to be negligible confirming that it is primarily generated during the partonic phase and coalescence process. A comparison of the AMPT results with measurements from the STAR experiment at RHIC in Au+Au collisions establish the transported quark contribution as a baseline for the observed charge-dependent splitting, on top of which electromagnetic field effects must be considered.
Cite
@article{arxiv.2603.28742,
title = {Charge-Dependent Directed Flow in Symmetric Nuclear Collisions},
author = {Vipul Bairathi and Kishora Nayak},
journal= {arXiv preprint arXiv:2603.28742},
year = {2026}
}
Comments
9 pages, 7 figures