Published August 15, 2009 | Version v1
Journal article

Deconfinement of neutron star matter within the Nambu-Jona-Lasinio model

  • 1. Universidade Federal do ABC, Centro de Ciencias Naturais e Humanas, Rua Santa Adelia, 166, 09210-170, Santo Andre (Brazil)
  • 2. Department of Physics, Sultan Qaboos University, P.O. Box 36 Al-Khode 123 Muscat (Oman)
  • 3. Departmento de Fisica, Comision Nacional de Energia Atomica, (1429) Buenos Aires (Argentina)
  • 4. CONICET, Rivadavia 1917, (1033) Buenos Aires (Argentina)
  • 5. Universidad Favaloro, Solis 453, (1078) Buenos Aires (Argentina)

Description

We study the deconfinement transition of hadronic matter into quark matter under neutron star conditions assuming color and flavor conservation during the transition. We use a two-phase description. For the hadronic phase we use different parametrizations of a nonlinear Walecka model which includes the whole baryon octet. For the quark-matter phase we use an SU(3)f Nambu-Jona-Lasinio effective model including color superconductivity. Deconfinement is considered to be a first order phase transition that conserves color and flavor. It gives a short-lived transitory colorless-quark phase that is not in β equilibrium, and decays to a stable configuration in τ∼τweak∼10-8 s. However, in spite of being very short lived, the transition to this intermediate phase determines the onset of the transition inside neutron stars. We find the transition free-energy density for temperatures typical of neutron star interiors. We also find the critical mass above which compact stars should contain a quark core and below which they are safe with respect to a sudden transition to quark matter. Rather independently on the stiffness of the hadronic equation of state (EOS) we find that the critical mass of hadronic stars (without trapped neutrinos) is in the range of ∼1.5-1.8 solar masses. This is in coincidence with previous results obtained within the MIT bag model.

Additional details

Publishing Information

Journal Title
Physical Review. D, Particles Fields
Journal Volume
80
Journal Issue
4
Journal Page Range
p. 045017-045017.9
ISSN
0556-2821
CODEN
PRVDAQ

Optional Information

Notes
(c) 2009 The American Physical Society