Heavy-quark production and elliptic flow in Au$+$Au collisions at $\sqrt{s_{_{NN}}}=62.4$ GeV
A. Adare, C. Aidala, N.N. Ajitanand, Y. Akiba, R. Akimoto, H., Al-Ta'ani, J. Alexander, A. Angerami, K. Aoki, N. Apadula, Y. Aramaki, H., Asano, E.C. Aschenauer, E.T. Atomssa, T.C. Awes, B. Azmoun, V. Babintsev, M., Bai, B. Bannier, K.N. Barish, B. Bassalleck, S. Bathe

TL;DR
This study measures heavy-flavor electron production and elliptic flow in Au+Au collisions at 62.4 GeV, revealing interactions with the medium but less thermalization than at higher energies.
Contribution
First measurement of heavy-flavor electron yield and flow at 62.4 GeV, providing insights into heavy-quark interactions at lower collision energies.
Findings
Invariant yield slightly enhanced compared to p+p reference.
Nonzero v2 indicates heavy-quark-medium interaction.
v2 smaller than at 200 GeV, suggesting less thermalization.
Abstract
We present measurements of electrons and positrons from the semileptonic decays of heavy-flavor hadrons at midrapidity ( 0.35) in AuAu collisions at GeV. The data were collected in 2010 by the PHENIX experiment that included the new hadron-blind detector. The invariant yield of electrons from heavy-flavor decays is measured as a function of transverse momentum in the range GeV/. The invariant yield per binary collision is slightly enhanced above the reference in AuAu 0%--20%, 20%--40% and 40%--60% centralities at a comparable level. This may be a result of the interplay between initial-state Cronin effects, final-state flow, and energy loss for heavy-quark production at this low beam energy. The of electrons from heavy-flavor decays is nonzero when averaged between GeV/ from %…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Particle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions
