Spinodal instabilities in asymmetric nuclear matter based on realistic NN interactions

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Abstract

A density dependent relativistic mean-field model is determined to reproduce the components of the nucleon self-energy at low densities. This model is used to investigate spinodal instabilities in isospin asymmetric nuclear matter at finite temperatures. The inhomogeneous density distributions in the spinodal region are investigated through calculations in a cubic box with periodic boundary conditions. Compared to results obtained in phenomenological calculations the spinodal region is large, i.e., the spinodal region at zero temperature can reach densities above 0.12 fm-3. The predicted spinodal region is strongly concentrated around isospin symmetric nuclear matter and the critical temperature is considerably lower than in the previous microscopic based investigation within a non-relativistic Brueckner-Hartree-Fock approach.

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APA

Van Dalen, E. N. E., & Müther, H. (2013). Spinodal instabilities in asymmetric nuclear matter based on realistic NN interactions. Physical Review C - Nuclear Physics, 87(2). https://doi.org/10.1103/PhysRevC.87.024317

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