English

Gluonic Hot Spot Initial Conditions in Heavy-Ion Collisions

Nuclear Theory 2021-02-17 v1

Abstract

The initial conditions in heavy-ion collisions are calculated in many different frameworks. The importance of nucleon position fluctuations within the nucleus and sub-nucleon structure has been established when modeling initial conditions for input to hydrodynamic calculations. However, there remain outstanding puzzles regarding these initial conditions, including the measurement of the near equivalence of the elliptical v2v_{2} and triangular v3v_{3} flow coefficients in ultra-central 0-1% Pb+Pb collisions at the LHC. Recently a calculation termed MAGMA incorporating gluonic hot spots via two-point correlators in the Color Glass Condensate framework, and no nucleons, provided a simultaneous match to these flow coefficients measured by the ATLAS experiment, including in ultra-central 0-1% collisions. Our calculations reveal that the MAGMA initial conditions do not describe the experimental data when run through full hydrodynamic SONIC simulations or when the hot spots from one nucleus resolve hot spots from the other nucleus, as predicted in the Color Glass Condensate framework. We also explore alternative initial condition calculations and discuss their implications.

Keywords

Cite

@article{arxiv.2008.08729,
  title  = {Gluonic Hot Spot Initial Conditions in Heavy-Ion Collisions},
  author = {R. Snyder and M. Byres and S. H. Lim and J. L. Nagle},
  journal= {arXiv preprint arXiv:2008.08729},
  year   = {2021}
}

Comments

14 pages, 15 figures, submitted for publication