Artículos de revistas
Quantum vacuum in hot nuclear matter: A non-perturbative treatment
Fecha
2001-07-01Registro en:
Journal of Physics G: Nuclear and Particle Physics, v. 27, n. 7, p. 1561-1575, 2001.
0954-3899
10.1088/0954-3899/27/7/314
WOS:000170187400018
2-s2.0-0035608698
Autor
Institute for Plasma Research
Universidade Estadual Paulista (Unesp)
J W Goethe Universität
Institución
Resumen
We derive the equation of state for hot nuclear matter using the Walecka model in a non-perturbative formalism. We include here the vacuum polarization effects arising from the nucleon and scalar mesons through a realignment of the vacuum. A ground state structure with baryon-antibaryon condensates yields the results obtained through the relativistic Hartree approximation of summing baryonic tadpole diagrams. Generalization of such a state to include the quantum effects for the scalar meson fields through the σ -meson condensates amounts to summing over a class of multiloop diagrams. The techniques of the thermofield dynamics method are used for the finite-temperature and finite-density calculations. The in-medium nucleon and sigma meson masses are also calculated in a self-consistent manner. We examine the liquid-gas phase transition at low temperatures (≈ 20 MeV), as well as apply the formalism to high temperatures to examine a possible chiral symmetry restoration phase transition.