Statistical analysis of pQCD energy loss across system size, flavor, , and
arXiv:2505.14568 · doi:10.1007/JHEP11(2025)019
Abstract
We present suppression predictions from our pQCD-based energy loss model, which receives small system size corrections, for high- , and meson as a function of centrality, flavor, , and from large to small collision systems at RHIC and LHC. A statistical analysis is used to constrain the effective strong coupling in our model to available high- suppression data from central heavy-ion collisions at RHIC and LHC, yielding good agreement with all available data. We estimate two important theoretical uncertainties in our model, stemming from: the transition between vacuum and hard thermal loop propagators in the collisional energy loss, and from the angular cutoff on the radiated gluon momentum. We find, consistently, that the extracted remains relatively unchanged across heavy- and light-flavor final states and across central, semi-central, and peripheral collisions. We make predictions from our large-system-constrained model for small systems and find good agreement with photon-normalized in centrality + Au collisions by PHENIX. However, we find strong disagreement with the measured in centrality + Pb collisions by ALICE and ATLAS; we argue that this disagreement is due, in large part, to centrality bias. We make predictions for the ratio of suppression in He + Au and + Au collisions, which may in the future be used to disentangle final- from initial-state suppression in small systems. We then compare our results to various subsets of data, which allows us to estimate the preferred: low- scale at which non-perturbative processes become important, scales at which the strong coupling runs, and scale at which vacuum propagators transition to thermally modified propagators in collisional energy loss.
70 pages without references, 30 figures. Updated with oxygen and neon RAA predictions, as well as qhat discussion
References in corpus (18)
- Glauber Modeling in High Energy Nuclear Collisions
- Elliptic and triangular flow in event-by-event (3+1)D viscous hydrodynamics
- Drag force in AdS/CFT
- Global analysis of fragmentation functions for pions and kaons and their uncertainties
- Event-by-event gluon multiplicity, energy density and eccentricities at RHIC and LHC
- The theory and phenomenology of perturbative QCD based jet quenching
- Towards an understanding of the RHIC single electron data
- Non-Abelian energy loss in cold nuclear matter
- Collisional dissociation of heavy mesons in dense QCD matter
- Comparing energy loss and -broadening in perturbative QCD with strong coupling SYM theory
- Principal component analysis of event-by-event fluctuations
- Running Coupling Corrections to High Energy Inclusive Gluon Production
- Overview of high-density QCD studies with the CMS experiment at the LHC
- Classical vs quantum corrections to jet broadening in a weakly-coupled Quark-Gluon Plasma
- No-quenching baseline for energy loss signals in oxygen-oxygen collisions
- A unified description of small, peripheral, and large system suppression data from pQCD
- Utilizing high- theory and data to constrain the initial stages of quark-gluon plasma
- Collisional and radiative energy loss in small systems