English

Resonant Conversion of Photon Modes Due to Vacuum Polarization in a Magnetized Plasma: Implications for X-Ray Emission from Magnetars

Astrophysics 2009-11-07 v2

Abstract

It is known that vacuum polarization can modify the photon propagation modes in the atmospheric plasma of a strongly magnetized neutron star. A resonance occurs when the effect of vacuum polarization on the photon modes balances that of the plasma. We show that a photon (with energy E\goE\go a few keV) propagating outward in the atmosphere can convert from one polarization mode into another as it traverses the resonant density, ρresYe1η2(B/1014G)2(E/1keV)2\rho_{res}\simeq Y_e^{-1}\eta^{-2}(B/10^{14} G)^2(E/1 keV)^2 g cm3^{-3}, where YeY_e is the electron fraction, and η1\eta\sim 1 is a slowly varying function of the magnetic field BB. The physics of this mode conversion is analogous to the Mikheyev-Smirnov-Wolfenstein mechanism for neutrino oscillation. Because the two photon modes have vastly different opacities in the atmosphere, this vacuum-induced mode conversion can significantly affect radiative transport and surface emission from strongly magnetized neutron stars.

Keywords

Cite

@article{arxiv.astro-ph/0108127,
  title  = {Resonant Conversion of Photon Modes Due to Vacuum Polarization in a Magnetized Plasma: Implications for X-Ray Emission from Magnetars},
  author = {Dong Lai and Wynn C. G. Ho},
  journal= {arXiv preprint arXiv:astro-ph/0108127},
  year   = {2009}
}

Comments

7 pages with 3 figures. Minor changes. To be published in ApJ (Feb 2002)