First constraints on the nonperturbative gluon Collins-Soper kernel
Artur Avkhadiev, Yang Fu, Phiala E. Shanahan, Michael L. Wagman, Yong Zhao
Abstract
The gluon Collins-Soper kernel, which encodes the rapidity evolution of transverse-momentum-dependent gluon distributions, is constrained for the first time in the nonperturbative regime, for transverse momentum scales qT ∈ [ 300 MeV, 1.3 GeV]. The constraints are determined in lattice QCD at a close-to-physical pion mass Mπ= 172(3) MeV, a single lattice spacing a=0.15 fm, and next-to-next-to-leading logarithmic matching in Large-Momentum Effective Theory. These results represent the first step toward a controlled determination of the gluon Collins-Soper kernel in QCD, with eventual phenomenological import and relevance to present and future experiments sensitive to the gluon structure of hadronic matter.
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