English

Bottomonium production in heavy-ion collisions at STAR

High Energy Physics - Experiment 2019-08-13 v2 Nuclear Experiment

Abstract

Bottomonium measurements provide unique insight into hot and cold nuclear matter effects present in the medium that is formed in high-energy heavy-ion collisions. Recent STAR results show that in sNN\sqrt{s_{NN}} = 200 GeV central Au+Au collisions the Υ\Upsilon(1S) state is suppressed more than if only cold nuclear matter effects were present, and the excited state yields are consistent with a complete suppression. In 2012, STAR also collected 263.4 μ\mub1^{-1} high-energy-electron triggered data in U+U collisions at sNN\sqrt{s_{NN}}= 193 GeV. Central U+U collisions, with an estimated 20% higher energy density than in central Au+Au data, extend the Υ\Upsilon(1S+2S+3S) and Upsilon(1S) nuclear modification trends observed in Au+Au towards higher number of participant nucleons, and confirm the suppression of the Υ\Upsilon(1S) state. We see a hint with 1.8 sigma significance that the Υ\Upsilon(2S+3S) excited states are not completely suppressed in U+U collisions. These data support the sequential in-medium quarkonium dissociation picture and favor models with a strong qqˉq\bar{q} binding.

Keywords

Cite

@article{arxiv.1509.05359,
  title  = {Bottomonium production in heavy-ion collisions at STAR},
  author = {Robert Vertesi},
  journal= {arXiv preprint arXiv:1509.05359},
  year   = {2019}
}

Comments

Proceedings of the Hard Probes International Conference 2015, Montreal, Canada. 4 pages, 5 figures