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Anisotropic Flow in Ultra-Central Pb-Pb Collisions at sNN=5.36 TeV with ALICE

Iris Likmeta

nucl-exarXiv:2608.11199

Abstract

Anisotropic flow measurements in heavy-ion collisions are sensitive to the spatial distribution of the initial state, and quark-gluon plasma transport properties such as the shear viscosity to entropy density ratio (η/s). State-of-the-art relativistic hydrodynamic models successfully describe such flow measurements over a wide centrality range. However, the hydrodynamic description of anisotropic flow deviates from the experimental data in ultra-central collisions (UCC), where the average geometric anisotropy of the system becomes small and fluctuations dominate the initial-state geometry. This discrepancy constitutes the UCC puzzle, as the expected hierarchy of flow harmonics is not fully reproduced by current modeling approaches. Probing towards ultra-central collisions, effects on flow fluctuations due to the initial spatial anisotropies are suppressed. The measured flow can be explained by quantum fluctuations on the energy distribution of 208Pb nuclei. An octupole deformation of the 208Pb nuclei has been proposed as a remedy to improve the modeling of the measured v3 \2\ / v2 \2\ ratio. In this contribution, we present measurements of v3\2\/v2\2\ ratio in ultra-central Pb Pb collisions at sNN = 5.36 TeV with ALICE Run 3 detector and compare them with recent hydrodynamic model calculations.

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