Hot neutron matter from a Self-Consistent Green's Functions approach
arXiv:0809.1467 · doi:10.1103/PhysRevC.79.025802
Abstract
A systematic study of the microscopic and thermodynamical properties of pure neutron matter at finite temperature within the Self-Consistent Green's Function approach is performed. The model dependence of these results is analyzed by both comparing the results obtained with two different microscopic interactions, the CD-BONN and the Argonne V18 potentials, and by analyzing the results obtained with other approaches, such as the Brueckner--Hartree--Fock approximation, the variational approach and the virial expansion.
34 pages, 10 figures
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