We present a detailed measurement of charged two-pion correlation functions
in 0%-30% centrality sNN=200 GeV Au+Au collisions by the
PHENIX experiment at the Relativistic Heavy Ion Collider. The data are well
described by Bose-Einstein correlation functions stemming from L\'evy-stable
source distributions. Using a fine transverse momentum binning, we extract the
correlation strength parameter λ, the L\'evy index of stability
α and the L\'evy length scale parameter R as a function of average
transverse mass of the pair mT. We find that the positively and the
negatively charged pion pairs yield consistent results, and their correlation
functions are represented, within uncertainties, by the same L\'evy-stable
source functions. The λ(mT) measurements indicate a decrease of the
strength of the correlations at low mT. The L\'evy length scale parameter
R(mT) decreases with increasing mT, following a hydrodynamically
predicted type of scaling behavior. The values of the L\'evy index of stability
α are found to be significantly lower than the Gaussian case of
α=2, but also significantly larger than the conjectured value that may
characterize the critical point of a second-order quark-hadron phase
transition.Comment: 448 authors, 25 pages, 11 figures, 4 tables, 2010 data. v2 is version
accepted for publication in Phys. Rev. C. Plain text data tables for the
points plotted in figures for this and previous PHENIX publications are (or
will be) publicly available at http://www.phenix.bnl.gov/papers.htm