4.7 Article

Nucleon structure from basis light-front quantization

Journal

PHYSICAL REVIEW D
Volume 104, Issue 9, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.104.094036

Keywords

-

Funding

  1. Institute of Modern Physics, Chinese Academy of Sciences [E129952YR0]
  2. Chinese Academy of Sciences Presidents International Fellowship Initiative [2021PM0023]
  3. Key Research Program of Frontier Sciences, Chinese Academy of Sciences [ZDB-SLY-7020]
  4. Natural Science Foundation of Gansu Province, China [20JR10RA067]
  5. Strategic Priority Research Program of the Chinese Academy of Sciences [XDB34000000]
  6. Department of Energy [DE-FG02-87ER40371, DE-SC0018223]
  7. National Energy Research Scientific Computing Center (NERSC) , a U.S. Department of Energy Office of Science User Facility [DE-AC02-05CH11231]
  8. Institute of Modern Physics, Chinese Academy of Sciences

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The study produces the light-front wave functions of nucleons and investigates their properties, finding that some form factors of protons agree with experimental data while those of neutrons deviate slightly. Additionally, quark distribution functions, after QCD scale evolution, are fairly consistent with global data.
We produce the light-front wave functions (LFWFs) of the nucleon from a basis light-front approach in the leading Fock-sector representation. We solve for the mass eigenstates from a light-front effective Hamiltonian, which includes a confining potential adopted from light-front holography in the transverse direction, a longitudinal confinement, and a one-gluon exchange interaction with fixed coupling. We then employ the LFWFs to obtain the electromagnetic and axial form factors, the parton distribution functions (PDFs), and the generalized parton distribution functions for the nucleon. The electromagnetic and axial form factors of the proton agree with the experimental data, whereas the neutron form factors deviate somewhat from the experiments in the low-momentum transfer region. The unpolarized, the helicity, and the transversity valence quark PDFs, after QCD scale evolution, are fairly consistent with the global fits to the data at the relevant experimental scales. The helicity asymmetry for the down quark also agrees well with the measurements; however, the asymmetry for the up quark shows a deviation from the data, especially in the small x region. We also find that the tensor charge agrees well with the extracted data and the lattice QCD predictions, while the axial charge is somewhat outside the experimental error bar. The electromagnetic radii of the protons, the magnetic radius of the neutron, and the axial radius are in excellent agreement with the measurements, while the neutron charge radius deviates from the experiment.

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