arXiv:1301.5528·v1·Nuclear Theory
Phase transitions of dense neutron matter with generalized Skyrme interaction to superfluid states with triplet pairing in strong magnetic field
Abstract
A generalized non-relativistic Fermi-liquid approach was used to find analytical formulas for temperatures and (which are functions nonlinear of density n and linear of magnetic field H) of phase transitions in spatially uniform dense pure neutron matter from normal to superfluid states with spin-triplet p-wave pairing (similar to anisotropic superfluid phases and ) in steady and homogeneous strong magnetic field (but , where is the magnetic dipole moment of a neutron, E_{c} is the cutoff energy and is the Fermi energy in neutron matter). General formulas for (valid for arbitrary parametrization of the effective Skyrme interaction in neutron matter) are specified here for generalized BSk18 parametrization of the Skyrme forces (with additional terms dependent on density n) on the interval , where is nuclear density and at critical density triplet superfluidity disappears, . Expressions for phase transition temperatures (at E_{c}=10 MeV) and are realistic non-monotone functions of density n for BSk18 parametrization of the Skyrme forces (contrary to their monotone increase for all previous BSk parameterizations). Phase transitions to superfluid states of such type might occur in liquid outer core of magnetars (strongly magnetized neutron stars).
Comments: 4 pages, 2 figures; Proceedings of the 26th International Conference on Low Temperature Physics (LT26), Beijing, China, 10-17 August 2011