Transverse Momentum Distributions from Lattice QCD without Wilson Lines

ORAL

Abstract

The transverse-momentum-dependent distributions (TMDs), which are defined by gauge-invariant 3D parton correlators with staple-shaped lightlike Wilson lines, can be calculated from quark and gluon correlators fixed in the Coulomb gauge on a Euclidean lattice. In the framework of large-momentum effective theory, a quasi-TMD defined from such correlators in a large-momentum hadron state can be matched to the TMD via a factorization formula, whose exact form is derived using soft collinear effective theory and verified at one-loop order. Compared to the currently used gauge-invariant correlators, this new method can substantially improve statistical precision and simplify renormalization for the time-reversal-even TMDs, which will greatly enhance the predicative power of lattice QCD in the nonperturbative region. In this talk, I will introduce this framework and show its recent applications to the lattice calculation of TMD physics.

*This material is based upon work supported by the U.S. Department of Energy, Office of Science, Office of Nuclear Physics through Contract No.~DE-AC02-06CH11357, the Quark-Gluon Tomography (QGT) Topical Collaboration with Award DE-SC0023646, and the 2023 Physical Sciences and Engineering (PSE) Early Investigator Named Award program at Argonne National Laboratory.

Publication: Yong Zhao, "Transverse Momentum Distributions from Lattice QCD without Wilson Lines", Phys.Rev.Lett. 133 (2024) 24, 241904, doi: https://doi.org/10.1103/PhysRevLett.133.241904.

Presenters

  • Yong Zhao

    • Argonne National Laboratory

Authors

  • Yong Zhao

    • Argonne National Laboratory