The fate of the weakly-bound in nuclear matter
arXiv:1408.5384 · doi:10.1016/j.nuclphysa.2014.08.079
Abstract
We present new results of a completed PHENIX analysis of modification at midrapidity in 200 GeV Au collisions. Strong suppression of the relative to the is observed. This difference in suppression is too strong to be explained by breakup effects in the nucleus, due to the short nuclear crossing times at RHIC. Given the observation of long range correlations in A collisions at LHC and RHIC, consistent with hydrodynamics, these observations raise interesting questions about the mechanism of suppression when it is produced in a nuclear target. In 2012, the PHENIX Collaboration installed the FVTX, a silicon tracker that precisely measures muon pair opening angles prior to any multiple scattering in the muon arm absorber, and thus provides an improved dimuon mass resolution. The FVTX allows the to be separated from the at forward and backward rapidity for the first time at RHIC. We present new results on production in collisions at GeV from the 2013 data set.
proceedings of Quark Matter 2014
References in corpus (6)
- Heavy quarkonium: progress, puzzles, and opportunities
- Exclusive and production in collisions at TeV
- High transverse momentum quarkonium production and dissociation in heavy ion collisions
- Nuclear modification of psi^prime, chi_c and J/psi production in d+Au collisions at sqrt(s_NN) = 200 GeV
- Cold-nuclear-matter effects on heavy-quark production at forward and backward rapidity in d+Au collisions at sqrt(s_NN)=200 GeV
- The PHENIX Forward Silicon Vertex Detector