Short-range correlations in asymmetric nuclear matter
arXiv:nucl-th/0311046 · doi:10.1016/j.physletb.2004.02.061
Abstract
The spectral function of protons in the asymmetric nuclear matter is calculated in the self-consistent T-matrix approach. The spectral function per proton increases with increasing asymmetry. This effect and the density dependence of the spectral function partially explain the observed increase of the spectral function with the mass number of the target nuclei in electron scattering experiments.
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Cited by in corpus (8)
- Correlations in Hot Asymmetric Nuclear Matter
- Depletion of the nuclear Fermi sea
- In medium T-matrix for nuclear matter with three-body forces - binding energy and single particle properties
- Correlations and spectral functions in asymmetric nuclear matter
- Momentum distributions and spectroscopic factors of doubly-closed shell nuclei in correlated basis function theory
- Short Range Correlations and Spectral Functions in Asymmetric Nuclear Matter
- Proton spectral functions in finite nuclei based on the extended Brueckner-Hartree-Fock approach
- Spectral properties of nuclear matter