English

Charm-hadron production in $pp$ and AA collisions

Nuclear Theory 2021-02-03 v1 High Energy Physics - Phenomenology

Abstract

Recent measurements of various charm-hadron ratios in pppp, pp-Pb and Pb-Pb collisions at the LHC have posed challenges to the theoretical understanding of heavy-quark hadronization. The Λc/D0\Lambda_c/D^0 ratio in pppp and pp-Pb collisions shows larger values than those found in e+ee^+e^- and epep collisions and predicted by Monte-Carlo event generators based on string fragmentation, at both low and intermediate transverse momenta (pTp_T). In AA collisions, the Ds/DD_s/D ratio is significantly enhanced over its values in pppp, while the Λc/D0\Lambda_c/D^0 data indicates a further enhancement at intermediate pTp_T. Here, we report on our recent developments for a comprehensive description of the charm hadrochemistry and transport in pppp and AAAA collisions. For pppp collisions we find that the discrepancy between the Λc/D0\Lambda_c/D^0 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 Λc\Lambda_c via decay feeddown. For AAAA 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.

Keywords

Cite

@article{arxiv.2002.00392,
  title  = {Charm-hadron production in $pp$ and AA collisions},
  author = {Min He and Ralf Rapp},
  journal= {arXiv preprint arXiv:2002.00392},
  year   = {2021}
}

Comments

4 pages, 3 figures; Quark Matter 2019 proceedings

R2 v1 2026-06-23T13:28:09.751Z