Anisotropic pressure in strange quark matter under the presence of a strong magnetic field
Abstract
Thermodynamic properties of strange quark matter in strong magnetic fields H up to 1020 G are considered within the MIT bag model at zero temperature implying the constraints of total baryon number conservation, charge neutrality and chemical equilibrium. The pressure anisotropy, exhibiting in the difference between the pressures along and perpendicular to the field direction, becomes essential at H>Hth, with the estimate 1017<Hth1018 G. The longitudinal pressure vanishes in the critical field Hc, which can be somewhat less or larger than 1018 G, depending on the total baryon number density and bag pressure. As a result, the longitudinal instability occurs in strange quark matter, which precludes: (1) a significant drop in the content of s quarks, which, otherwise, could happen at H1020 G; (2) the appearance of positrons in weak processes in a narrow interval near H2·1019 G (replacing electrons). The occurrence of the longitudinal instability leaves the possibility only for electrons to reach a fully polarized state, while for all quark flavors the polarization remains mild even for the fields near Hc. The anisotropic equation of state is determined under the conditions relevant to the interiors of magnetars.
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