Scaling Properties of the Correlator: Constraints on Background and CME-Sensitive Charge Separation in Heavy-Ion Collisions
arXiv:2206.05773
Abstract
The scaling properties of the correlator are used to investigate charge separation associated with the chiral magnetic effect (CME) in +Au, +Au, Ru+Ru, Zr+Zr, and Au+Au collisions at ~GeV, and in +Pb and Pb+Pb collisions at and ~TeV. Anomalous Viscous Fluid Dynamics (AVFD) calculations provide complementary benchmarks for background and signal+background behavior. Scaling by the elliptic-flow coefficient reduces the leading flow-coupled background dependence, while the resulting exhibits a common approximate scaling behavior for +Au, +Au, +Pb, and Pb+Pb collisions, consistent with multiplicity dilution of background-driven charge correlations across markedly different collision systems and environments. In contrast, Ru+Ru, Zr+Zr, and Au+Au collisions exhibit systematic positive deviations from their respective background-scaling trends. These scaling violations are qualitatively similar to those generated by AVFD calculations with an input CME signal and, relative to the experimentally constrained background scaling, provide evidence for a CME contribution to the measured charge separation. The inferred CME fraction is approximately for mid-central Au+Au collisions and roughly a factor of two smaller for Ru+Ru and Zr+Zr, whose values are consistent within uncertainties. The inferred CME fractions reduce the expected Ru+Ru--Zr+Zr difference to only in the total charge-separation signal, explaining its limited experimental sensitivity. These results demonstrate that scaling violations relative to an experimentally constrained background provide a quantitative strategy for isolating a CME contribution to charge separation in heavy-ion collisions.
5 figures, published version. arXiv admin note: text overlap with arXiv:2203.10029