Jet quenching and its substructure dependence due to color decoherence
Abstract
Motivated by color coherence and decoherence effects in the QCD medium, we propose a theoretical framework that combines vacuum-like emissions and medium-induced radiation to study jet quenching and its dependence on jet cone sizes and substructure. In our approach, a jet produced at a hard scale first undergoes vacuum-like evolution, as described by the well-established generating-function method in the double logarithmic approximation. These vacuum-like emissions generate subjets at an infrared momentum scale . Each subjet then experiences medium-induced energy loss as described by the BDMPS-Z formalism. By modeling the QCD bulk medium using OSU (2+1)-dimensional viscous hydrodynamics and treating together with the jet-quenching parameters at the initial proper time of the hydrodynamic evolution as free parameters, our approach provides a very good description of the inclusive jet modification factor for large-radius jets and its dependence on jet substructure in 0-10% PbPb collisions at , as measured by the ATLAS experiment.
Cite
@article{arxiv.2603.22014,
title = {Jet quenching and its substructure dependence due to color decoherence},
author = {Xiang-Pan Duan and Lin Chen and Guo-Liang Ma and Carlos A. Salgado and Bin Wu},
journal= {arXiv preprint arXiv:2603.22014},
year = {2026}
}
Comments
33 pages, 8 figures