Percolation leads to finite-size effects on the transition temperature and center of mass energy required for the quark-gluon plasma formation
arXiv:2208.03769 · doi:10.1103/PhysRevD.106.L031503
Abstract
We investigate the finite-size effects on the transition temperature associated with the quark-gluon plasma (QGP) formation. From a percolation perspective, the onset of the QGP in high-energy collisions occurs when the spanning cluster of color strings emerges. The principal result presented here is the finite-size effects on the transition temperature expressed as a power law in terms of the nucleon number. We found that the transition temperature is higher for small systems than for large ones. It means that minimal triggering conditions events in pp collisions require about twenty times higher energies than AuAu-PbPb collisions. We also estimate the center of mass energy required for the QGP formation as a function of the nucleon number. Our results are consistent with the minimal center of mass energies at which the QGP has been observed.
6 pages, 4 figures
References in corpus (8)
- Observation of long-range near-side angular correlations in proton-lead collisions at the LHC
- Recent advances in percolation theory and its applications
- Continuum Percolation Thresholds in Two Dimensions
- Percolation of color sources and critical temperature
- Long range correlations, event simulation and parton percolation
- String percolation in AA and p+p collisions
- String percolation threshold for elliptically bounded systems
- Area covered by disks in small-bounded continuum percolating systems: An application to the string percolation model