English

Magnetar superconductivity versus magnetism: neutrino cooling processes

High Energy Astrophysical Phenomena 2015-04-02 v2 Solar and Stellar Astrophysics Nuclear Theory

Abstract

We describe the microphysics, phenomenology, and astrophysical implication of a BB-field induced unpairing effect that may occur in magnetars, if the local BB-field in the core of a magnetar exceeds a critical value Hc2H_{c2}. Using the Ginzburg-Landau theory of superconductivity, we derive the Hc2H_{c2} field for proton condensate taking into the correction (30%\le 30\%) which arises from its coupling to the background neutron condensate. The density dependence of pairing of proton condensate implies that Hc2H_{c2} is maximal at the crust-core interface and decreases towards the center of the star. As a consequence, magnetar cores with homogenous constant fields will be partially superconducting for "medium-field" magnetars (1015B5×101610^{15}\le B\le 5 \times 10^{16} G) whereas "strong-field" magnetars (B>5×1016B>5\times 10^{16} G) will be void of superconductivity. The neutrino emissivity of a magnetar's core changes in a twofold manner: (i)~the BB-field assisted direct Urca process is enhanced by orders of magnitude, because of the unpairing effect in regions where BHc2B\ge H_{c2}; (ii)~the Cooper-pair breaking processes on protons vanish in these regions and the overall emissivity by the pair-breaking processes is reduced by a factor of only a few.

Keywords

Cite

@article{arxiv.1502.02979,
  title  = {Magnetar superconductivity versus magnetism: neutrino cooling processes},
  author = {Monika Sinha and Armen Sedrakian},
  journal= {arXiv preprint arXiv:1502.02979},
  year   = {2015}
}

Comments

v2: minor changes, matches published version; v1: 10 RevTex two-column pages, 7 figures