Systematic study of flow of protons and light clusters in intermediate-energy heavy-ion collisions with momentum-dependent potentials
Viktar Kireyeu, Vadim Voronyuk, Michael Winn, Susanne Gl\"a{\ss}el, J\"org Aichelin, Christoph Blume, Elena Bratkovskaya, Gabriele Coci, Jiaxing Zhao

TL;DR
This study investigates how different nuclear equations-of-state influence collective flow observables in intermediate-energy heavy-ion collisions, highlighting the impact of momentum-dependent potentials on proton and light cluster behaviors.
Contribution
It introduces a momentum-dependent nucleon potential into the PHQMD model, enabling comparison of static and momentum-dependent EoS scenarios against experimental data.
Findings
Soft and soft momentum-dependent EoS match experimental flow data better.
Softening the EoS reduces proton midrapidity yields and enhances light-cluster production.
Flow patterns differ between cluster formation mechanisms, aiding in their discrimination.
Abstract
We study the influence of the nuclear equation-of-state (EoS) on collective observables -- the directed () and elliptic flow () of nucleons and light clusters -- in heavy-ion collisions at GeV energies using the Parton-Hadron-Quantum-Molecular Dynamics (PHQMD) approach. A novel development in this work is the inclusion of a momentum-dependent nucleon potential in the PHQMD in addition to the static, density-dependent Skyrme interaction. This enables three distinct EoS scenarios: two static ("soft" and "hard", differing in compressibility) and a soft, momentum-dependent EoS calibrated to elastic scattering data. We find a strong EoS sensitivity in proton and cluster rapidity and distributions: soft and soft momentum-dependent EoS yield similar results, markedly different from the hard EoS. Softening the EoS reduces proton yields at midrapidity while enhancing…
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