English

Nucleon Effective E-Mass in Neutron-Rich Matter from the Migdal-Luttinger Jump

Nuclear Theory 2016-04-06 v2 Solar and Stellar Astrophysics Nuclear Experiment

Abstract

The well-known Migdal-Luttinger theorem states that the jump of the single-nucleon momentum distribution at the Fermi surface is equal to the inverse of the nucleon effective E-mass. Recent experiments studying short-range correlations (SRC) in nuclei using electron-nucleus scatterings at the Jefferson National Laboratory (JLAB) together with model calculations constrained significantly the Migdal-Luttinger jump at saturation density of nuclear matter. We show that the corresponding nucleon effective E-mass is consequently constrained to M0,E/M2.22±0.35M_0^{\ast,\rm{E}}/M\approx2.22\pm0.35 in symmetric nuclear matter (SNM) and the E-mass of neutrons is smaller than that of protons in neutron-rich matter. Moreover, the average depletion of the nucleon Fermi sea increases (decreases) approximately linearly with the isospin asymmetry δ\delta according to κp/n0.21±0.06±(0.19±0.08)δ\kappa_{\rm{p}/\rm{n}}\approx 0.21\pm0.06 \pm (0.19\pm0.08)\delta for protons (neutrons). These results will help improve our knowledge about the space-time non-locality of the single-nucleon potential in neutron-rich nucleonic matter useful in both nuclear physics and astrophysics.

Keywords

Cite

@article{arxiv.1512.03370,
  title  = {Nucleon Effective E-Mass in Neutron-Rich Matter from the Migdal-Luttinger Jump},
  author = {Bao-Jun Cai and Bao-An Li},
  journal= {arXiv preprint arXiv:1512.03370},
  year   = {2016}
}

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Discussions added. Version accepted by PLB