We report the first lattice QCD computation of pion and kaon electromagnetic form factors, , at large momentum transfer up to 10 and , respectively. Utilizing physical masses and two fine lattices, we achieve good agreement with JLab experimental results at . For , our results provide QCD benchmarks for the forthcoming experiments at JLab 12 GeV and future electron-ion colliders. We also test the QCD collinear factorization framework utilizing our high- form factors at next-to-next-to-leading order in perturbation theory, which relates the form factors to the leading Fock-state meson distribution amplitudes. Comparisons with independent lattice QCD calculations using the same framework demonstrate, within estimated uncertainties, the universality of these nonperturbative quantities.
Ding, Heng-Tong, et al. "QCD Predictions for Meson Electromagnetic Form Factors at High Momenta: Testing Factorization in Exclusive Processes." Physical Review Letters, vol. 133, no. 18, Oct. 2024. https://doi.org/10.1103/PhysRevLett.133.181902
Ding, Heng-Tong, Gao, Xiang, Hanlon, Andrew D., et al., "QCD Predictions for Meson Electromagnetic Form Factors at High Momenta: Testing Factorization in Exclusive Processes," Physical Review Letters 133, no. 18 (2024), https://doi.org/10.1103/PhysRevLett.133.181902
@article{osti_2475428,
author = {Ding, Heng-Tong and Gao, Xiang and Hanlon, Andrew D. and Mukherjee, Swagato and Petreczky, Peter and Shi, Qi and Syritsyn, Sergey and Zhang, Rui and Zhao, Yong},
title = {QCD Predictions for Meson Electromagnetic Form Factors at High Momenta: Testing Factorization in Exclusive Processes},
annote = { We report the first lattice QCD computation of pion and kaon electromagnetic form factors, F M ( Q 2 ) , at large momentum transfer up to 10 and 28 GeV 2 , respectively. Utilizing physical masses and two fine lattices, we achieve good agreement with JLab experimental results at Q 2 ≲ 4 GeV 2 . For Q 2 ≳ 4 GeV 2 , our results provide QCD benchmarks for the forthcoming experiments at JLab 12 GeV and future electron-ion colliders. We also test the QCD collinear factorization framework utilizing our high- Q 2 form factors at next-to-next-to-leading order in perturbation theory, which relates the form factors to the leading Fock-state meson distribution amplitudes. Comparisons with independent lattice QCD calculations using the same framework demonstrate, within estimated uncertainties, the universality of these nonperturbative quantities. Published by the American Physical Society 2024 },
doi = {10.1103/PhysRevLett.133.181902},
url = {https://www.osti.gov/biblio/2475428},
journal = {Physical Review Letters},
issn = {ISSN PRLTAO},
number = {18},
volume = {133},
place = {United States},
publisher = {American Physical Society},
year = {2024},
month = {10}}