Sequential melting of charmonium states in an expanding Quark Gluon Plasma and suppression at RHIC and LHC energy collisions
arXiv:0804.1455 · doi:10.1088/0954-3899/35/9/095107
Abstract
We have developed a hydrodynamic model to study sequential melting of charmonium states in an expanding QGP medium. According to the initial fluid temperature profile, 's are randomly distributed in the transverse plane. As the fluid evolve in time, the free streaming 's are suppressed if the local fluid temperature exceed a critical temperature. PHENIX data on the centrality dependence of suppression in Au+Au collisions at mid-rapidity are explained by sequential melting of the charmonium states, , and , in the expanding medium. The critical temperatures and agree with lattice motivated calculations. The feed-down fraction depend on whether the cold nuclear matter effect is included or not. It changes from with cold nuclear matter effect included to when the effect is neglected. Model fails to reproduce the PHENIX data on the centrality dependence of suppression in Cu+Cu collisions at mid-rapidity, indicating that the mechanism of suppression is different in Au+Au and in Cu+Cu collisions. We also use the model to predict for the centrality dependence of suppression in Pb+Pb collisions at LHC energy, =5500 GeV. In LHC energy, 's are more suppressed in mid central collisions than in Au+Au collisions at RHIC energy.
9 pages, 9 figures. Revised version to be published in J. Phys. G
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