English

Magnetic field instability in a neutron star driven by the electroweak electron-nucleon interaction versus the chiral magnetic effect

High Energy Astrophysical Phenomena 2016-08-10 v2 High Energy Physics - Phenomenology

Abstract

We show that the Standard Model electroweak interaction of ultrarelativistic electrons with nucleons (eNeN interaction) in a neutron star (NS) permeated by a seed large-scale helical magnetic field provides its growth up to 1015G\gtrsim 10^{15}\thinspace\text{G} during a time comparable with the ages of young magnetars 104yr\sim 10^4\thinspace\text{yr}. The magnetic field instability originates from the parity violation in the eNeN interaction entering the generalized Dirac equation for right and left massless electrons in an external uniform magnetic field. We calculate the averaged electric current given by the solution of the modified Dirac equation containing an extra current for right and left electrons (positrons), which turns out to be directed along the magnetic field. Such current includes both a changing chiral imbalance of electrons and the eNeN potential given by a constant neutron density in NS. Then we derive the system of the kinetic equations for the chiral imbalance and the magnetic helicity which accounts for the eNeN interaction. By solving this system, we show that a sizable chiral imbalance arising in a neutron protostar due to the Urca-process eL+pN+νeLe^-_\mathrm{L} + p\to N + \nu_\mathrm{eL} diminishes very rapidly because of a huge chirality flip rate. Thus the eNeN term prevails the chiral effect providing a huge growth of the magnetic helicity and the helical magnetic field.

Keywords

Cite

@article{arxiv.1410.6676,
  title  = {Magnetic field instability in a neutron star driven by the electroweak electron-nucleon interaction versus the chiral magnetic effect},
  author = {Maxim Dvornikov and Victor B. Semikoz},
  journal= {arXiv preprint arXiv:1410.6676},
  year   = {2016}
}

Comments

6 pages in Revtex4.1, two columns, 2 eps figures; text was slightly extended, multiple misprints were corrected, some references were added; version published in Phys.Rev.D as a Rapid Communication