Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8186679 | Physics Letters B | 2018 | 6 Pages |
Abstract
It is generally believed that the quark-hadron transition at small values of baryon chemical potentials μB is a crossover but changes to a first-order phase transition with an associated critical endpoint (CEP) as μB increases. Such a μB-dependent quark-hadron transition is expected to result in a double-peak structure in the collision energy dependence of the baryon density fluctuation in heavy-ion collisions with one at lower energy due to the spinodal instability during the first-order phase transition and another at higher energy due to the critical fluctuations in the vicinity of the CEP. By analyzing the data on the p, d and 3H yields in central heavy-ion collisions within the coalescence model for light nuclei production, we find that the relative neutron density fluctuation ÎÏn=ã(δÏn)2ã/ãÏnã2 at kinetic freeze-out indeed displays a clear peak at sNN=8.8GeV and a possible strong re-enhancement at sNN=4.86GeV. Our findings thus provide a strong support for the existence of a first-order phase transition at large μB and its critical endpoint at a smaller μB in the temperature versus baryon chemical potential plane of the QCD phase diagram.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Nuclear and High Energy Physics
Authors
Kai-Jia Sun, Lie-Wen Chen, Che Ming Ko, Jie Pu, Zhangbu Xu,