Centrality dependence of Lévy-stable two-pion Bose-Einstein correlations in sNN=200\sqrt{s_{_{NN}}}=200 GeV Au++Au collisions

Abstract

International audienceThe PHENIX experiment measured the centrality dependence of two-pion Bose-Einstein correlation functions in sNN=200\sqrt{s_{_{NN}}}=200~GeV Au++Au collisions at the Relativistic Heavy Ion Collider at Brookhaven National Laboratory. The data are well represented by Lévy-stable source distributions. The extracted source parameters are the correlation-strength parameter λ\lambda, the Lévy index of stability α\alpha, and the Lévy-scale parameter RR as a function of transverse mass mTm_T and centrality. The λ(mT)\lambda(m_T) parameter is constant at larger values of mTm_T, but decreases as mTm_T decreases. The Lévy scale parameter R(mT)R(m_T) decreases with mTm_T and exhibits proportionality to the length scale of the nuclear overlap region. The Lévy exponent α(mT)\alpha(m_T) is independent of mTm_T within uncertainties in each investigated centrality bin, but shows a clear centrality dependence. At all centralities, the Lévy exponent α\alpha is significantly different from that of Gaussian (α=2\alpha=2) or Cauchy (α=1\alpha=1) source distributions. Comparisons to the predictions of Monte-Carlo simulations of resonance-decay chains show that in all but the most peripheral centrality class (50%-60%), the obtained results are inconsistent with the measurements, unless a significant reduction of the in-medium mass of the η\eta' meson is included. In each centrality class, the best value of the in-medium η\eta' mass is compared to the mass of the η\eta meson, as well as to several theoretical predictions that consider restoration of UA(1)U_A(1) symmetry in hot hadronic matter

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