arXiv:astro-ph/0406228·v2·Astrophysics
Effect of BCS pairing on entrainment in neutron superfluid current in neutron star crust
Brandon Carter🇫🇷 · Nicolas Chamel🇫🇷 · Pawel Haensel🇫🇷
Abstract
The relative current density of conduction neutrons in a neutron star crust beyond the neutron drip threshold can be expected to be related to the corresponding particle momentum covector by a linear relation of the form in terms of a physically well defined mobility tensor . This result is describable as an ``entrainment'' whose effect - wherever the crust lattice is isotropic - will simply be to change the ordinary neutron mass m to an effective mass such that in terms of the relevant number density n of unconfined neutrons we shall have . In a preceding analysis based on an independent particle treatment using Bloch boundary conditions to obtain the distribution of energy and associated group velocity as a function of wavenumber , it was shown that the mobility tensor would be given by , where is the Fermi energy. Using the approach due to Bogoliubov, it is shown here that the effect of BCS pairing with an energy gap \Delta_F and corresponding quasiparticle energy function \EE_k=\sqrt{(E_k-\mu)^2+\Delta_F^2}K^{ij}\propto \int d^3 k v_k^i v_k^j \Delta_F^2 /\EE^3_kp_i2|p_i v_k^i|<\EE_k^2/|E_k-\mu|$ for all modes). It is concluded that the prediction of a very large effective mass enhancement in the middle layers of the crust will not be significantly affected by the pairing mechanism.
Comments: 30 pages, revised published version