Centrality-dependent nuclear modification from hard-soft correlations in the glasma
Abstract: We present first predictions from the saturation-physics-based framework IP-Glasma for the nuclear modification factor as a function of centrality in + O, + Pb, O + O, and Pb + Pb collisions due only to initial-state effects. The same framework is responsible for both soft () and semi-hard () particle production, enabling the study of initial-state correlations between bulk and intermediate- particle production from a first-principles framework. We show that, tuned only to HERA data, IP-Glasma accurately predicts the self-normalized multiplicity distributions in + O, + Pb, O + O, and Pb + Pb collisions; the minimum-bias nuclear modification factor in + O and + Pb collisions; the centrality-cut nuclear modification factor in + Pb collisions; and the anomalous suppression of observed in very peripheral Pb + Pb collisions. We find that IP-Glasma predicts significantly less suppression than is measured in both O + O and Pb + Pb collisions at the Large Hadron Collider, in qualitative agreement with the scenario in which $R_{AA} < 1$ is due to final-state energy loss. We show that the inelastic nucleon-nucleon cross section () produced by IP-Glasma is extremely sensitive to the area of the subnucleonic hotspots; the same values of the hotspot area that reproduce the measured also reproduce minimum-bias . Finally, we show that the hard-soft correlations in IP-Glasma arise from event-by-event fluctuations in the color fields, which simultaneously drive enhanced production of both soft and hard particles.
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