arXiv:2606.29597·v2·High Energy Physics — Lattice
Complete Access to Leading-Twist -Baryon Light-Cone Distribution Amplitudes from Lattice QCD
Mu-Hua Zhang🇨🇳 · Haoyang Bai🇨🇳 · Min-Huan Chu🇵🇱 · Jun Hua🇨🇳 · Xiangdong Ji🇨🇳 · Xiangyu Jiang🇨🇳 · Jian Liang🇨🇳 · Cai-Dian Lü🇨🇳 · Andreas Schäfer🇩🇪 · Wei Wang🇨🇳 · Yi-Bo Yang🇨🇳 · Jian-Hui Zhang🇨🇳 · Jia-Lu Zhang🇨🇳 · Qi-An Zhang🇨🇳
Abstract
We report the first complete lattice-QCD determination of the leading-twist light-cone distribution amplitudes (LCDAs) of the baryon, obtained as full two-dimensional functions of the valence-quark momentum fractions. The calculation employs large-momentum effective theory to relate the light-cone amplitudes to equal-time nonlocal three-quark matrix elements of boosted baryons. Controlled physical extrapolations to the continuum, physical pion mass, and infinite momentum, together with hybrid renormalization, large- extrapolation, and perturbative matching, yield the three leading-twist LCDAs , , and . Using the lattice-determined LCDAs in place of the asymptotic form, we find an shift in the electromagnetic form factor at perturbative scales, demonstrating that the full two-dimensional LCDAs, rather than only their asymptotic shapes or lowest moments, are required for precision baryonic phenomenology. This work, together with the companion paper [1] detailing the baryon-LaMET framework, provides the first complete multi-dimensional -dependent baryon LCDAs from first principles and establishes a benchmark for lattice access to multi-dimensional baryon structure.
Comments: 9 pages, 4 figures. Ancillary files (Lambda_LCDAs.h5 and Lambda_LCDAs_readme.md) containing the lattice numerical data are included in the source