English

Deconfinement as an entropic self-destruction: a solution for the quarkonium suppression puzzle?

High Energy Physics - Phenomenology 2014-10-08 v2 High Energy Physics - Theory Nuclear Experiment Nuclear Theory

Abstract

The entropic approach to dissociation of bound states immersed in strongly coupled systems is developed. In such systems, the excitations of the bound state are often delocalized and characterized by a large entropy, so that the bound state is strongly entangled with the rest of the statistical system. If this entropy SS increases with the separation rr between the constituents of the bound state, S=S(r)S = S(r), then the resulting entropic force F=T S/rF = T\ {\partial S}/{\partial r} (TT is temperature) can drive the dissociation process. As a specific example, we consider the case of heavy quarkonium in strongly coupled quark-gluon plasma, where lattice QCD indicates a large amount of entropy associated with the heavy quark pair at temperatures 0.9 TcT1.5 Tc0.9\ T_c \leq T \leq 1.5\ T_c (TcT_c is the deconfinement temperature); this entropy S(r)S(r) grows with the inter-quark distance rr. We argue that the entropic mechanism results in an anomalously strong quarkonium suppression in the temperature range near TcT_c. This "entropic self-destruction" may thus explain why the experimentally measured quarkonium nuclear modification factor at RHIC (lower energy density) is smaller than at LHC (higher energy density), possibly resolving the "quarkonium suppression puzzle" - all of the previously known mechanisms of quarkonium dissociation operate more effectively at higher energy densities, and this contradicts the data. Moreover, we find that near TcT_c the entropic force leads to delocalization of the bound hadron states; we argue that this delocalization may be the mechanism underlying deconfinement.

Keywords

Cite

@article{arxiv.1409.2496,
  title  = {Deconfinement as an entropic self-destruction: a solution for the quarkonium suppression puzzle?},
  author = {Dmitri E. Kharzeev},
  journal= {arXiv preprint arXiv:1409.2496},
  year   = {2014}
}

Comments

a slightly extended version to appear in Phys Rev D; 6 pages, 3 figures