Nuclear-Modification Factor for Open-Heavy-Flavor Production at Forward Rapidity in Cu+Cu Collisions at sqrt(s_NN)=200 GeV
A. Adare, S. Afanasiev, C. Aidala, N.N. Ajitanand, Y. Akiba, H., Al-Bataineh, J. Alexander, K. Aoki, L. Aphecetche, R. Armendariz, S.H., Aronson, J. Asai, E.T. Atomssa, R. Averbeck, T.C. Awes, B. Azmoun, V., Babintsev, G. Baksay, L. Baksay, A. Baldisseri, K.N. Barish

TL;DR
This study measures the production and suppression of muons from heavy-flavor mesons in Cu+Cu collisions at 200 GeV, providing insights into cold- and hot-nuclear-matter effects and testing pQCD predictions.
Contribution
First measurement of heavy-flavor muon spectra and nuclear modification factors at forward rapidity in Cu+Cu collisions at 200 GeV.
Findings
Charm-production cross section in p+p collisions matches theoretical predictions.
Heavy-flavor muons show increased suppression with collision centrality.
Results indicate significant cold-nuclear-matter effects and energy loss in hot nuclear matter.
Abstract
Background: Heavy-flavor production in p+p collisions tests perturbative-quantum-chromodynamics (pQCD) calculations. Modification of heavy-flavor production in heavy-ion collisions relative to binary-collision scaling from p+p results, quantified with the nuclear-modification factor (R_AA), provides information on both cold- and hot-nuclear-matter effects. Purpose: Determine transverse-momentum, pt, spectra and the corresponding R_AA for muons from heavy-flavor mesons decay in p+p and Cu+Cu collisions at sqrt(s_NN)=200 GeV and y=1.65. Method: Results are obtained using the semi-leptonic decay of heavy-flavor mesons into negative muons. The PHENIX muon-arm spectrometers measure the p_T spectra of inclusive muon candidates. Backgrounds, primarily due to light hadrons, are determined with a Monte-Carlo calculation using a set of input hadron distributions tuned to match measured-hadron…
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