arXiv:2409.13996·v3·Nuclear Theory
Study of the EEC discrimination power on quark and gluon jet quenching effects in heavy-ion collisions at TeV
Shi-Yong Chen🇨🇳 · Zi-Xuan Xu🇨🇳 · Ke-Ming Shen🇨🇳 · Wei Dai🇨🇳 · Ben-Wei Zhang🇨🇳 · En-Ke Wang🇨🇳
Abstract
We present a systematic investigation of flavor-dependent jet quenching using energy-energy correlators (EEC) in TeV Pb+Pb collisions. Employing the improved SHELL model, which incorporates collisional and radiative energy loss, as well as medium response, we quantify distinct quenching signatures for quark and gluon jets. Key findings include: (1) Pure quark jets exhibit strong EEC enhancement at large angular scales, while gluon jets show a bimodal enhancement pattern at both small and large scales; (2) Dual-shift decomposition in the EEC ratio reveals shifts toward large primarily driven by energy loss, while small-~shifts extend beyond selection bias and indicate intrinsic enhancement of the gluon-initiated jets; (3) Quark jets experience global suppression of averaged energy weight , whereas gluon jets exhibit concentration toward small ; (4) Mechanism decomposition identifies elastic energy loss concentrating toward small , radiative loss dominating quark jet modification, and medium response amplifying large ~enhancement via soft hadrons. The observed flavor dependence in EEC modifications is dominantly driven by intrinsic jet structure differences rather than medium-induced mechanisms. We propose photon-tagged jets as quark proxies and inclusive charged-hadron jets as gluon proxies, finding they reproduce the respective flavor-specific quenching patterns. Our work establishes the EEC as a precision probe of color-charge-dependent jet-medium interactions, providing new constraints for the detailed extraction and QGP tomography, while highlighting the critical role of pre-quenching flavor asymmetries.
Comments: 13 pages, 9 figures