Charm-hadron production in and AA collisions
arXiv:2002.00392 · doi:10.1016/j.nuclphysa.2020.121850
Abstract
Recent measurements of various charm-hadron ratios in , -Pb and Pb-Pb collisions at the LHC have posed challenges to the theoretical understanding of heavy-quark hadronization. The ratio in and -Pb collisions shows larger values than those found in and collisions and predicted by Monte-Carlo event generators based on string fragmentation, at both low and intermediate transverse momenta (). In AA collisions, the ratio is significantly enhanced over its values in , while the data indicates a further enhancement at intermediate . Here, we report on our recent developments for a comprehensive description of the charm hadrochemistry and transport in and collisions. For collisions we find that the discrepancy between the data and model predictions is much reduced by using a statistical hadronization model augmented by a large set of "missing" states in the charm-baryon spectrum, contributing to the via decay feeddown. For collisions, we develop a 4-momentum conserving resonance recombination model for charm-baryon formation implemented via event-by-event simulations that account for space-momentum correlations (SMCs) in transported charm- and thermal light-quark distributions. The SMCs, together with the augmented charm-baryon states, are found to play an important role in describing the baryon-to-meson enhancement at intermediate momenta. We emphasize the importance of satisfying the correct (relative) chemical equilibrium limit when computing the charm hadrochemistry and its momentum dependence with coalescence models.
4 pages, 3 figures; Quark Matter 2019 proceedings