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Nonperturbative Collins-Soper Kernel from Chiral Quarks with Physical Masses

High Energy Physics - Lattice 2024-04-16 v2 High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment Nuclear Theory

Abstract

We present a lattice QCD calculation of the rapidity anomalous dimension of quark transverse-momentum-dependent distributions, i.e., the Collins-Soper (CS) kernel, up to transverse separations of about 1 fm. This unitary lattice calculation is conducted, for the first time, employing the chiral-symmetry-preserving domain wall fermion discretization and physical values of light and strange quark masses. The CS kernel is extracted from the ratios of pion quasi-transverse-momentum-dependent wave functions (quasi-TMDWFs) at next-to-leading logarithmic perturbative accuracy. Also for the first time, we utilize the recently proposed Coulomb-gauge-fixed quasi-TMDWF correlator without a Wilson line. We observe significantly slower signal decay with increasing quark separations compared to the established gauge-invariant method with a staple-shaped Wilson line. This enables us to determine the CS kernel at large nonperturbative transverse separations and find its near-linear dependence on the latter. Our result is consistent with the recent lattice calculation using gauge-invariant quasi-TMDWFs, and agrees with various recent phenomenological parametrizations of experimental data.

Keywords

Cite

@article{arxiv.2403.00664,
  title  = {Nonperturbative Collins-Soper Kernel from Chiral Quarks with Physical Masses},
  author = {Dennis Bollweg and Xiang Gao and Swagato Mukherjee and Yong Zhao},
  journal= {arXiv preprint arXiv:2403.00664},
  year   = {2024}
}

Comments

7 pages, 4 figures; published version

R2 v1 2026-06-28T15:06:08.491Z