paper

Light curves of oscillating neutron stars

arXiv:astro-ph/0502502 · doi:10.1111/j.1365-2966.2005.09198.x

Abstract

We calculate light curves produced by -modes with small azimuthal wavenumbers, , propagating in the surface fluid ocean of rotating neutron stars. We include relativistic effects due to rapid rotation, and propagate photons from the stellar surface to a distant observer using the Schwarzschild metric. The wave motions of the surface -modes are confined to the equatorial region of the star, and the surface pattern of the temperature variation can be either symmetric (for even modes) or anti-symmetric (for odd modes) with respect to the equator. Since for the surface -modes the oscillation frequency in the corotating frame of the star is much smaller than the rotation frequency, , we employ the approximation in which the oscillation frequency in the inertial frame, , is given by . We find that the , -mode produces the largest light variations. The dominant Fourier component in the light curves of these modes is the fundamental having , and the first harmonic component having is always negligible in comparison. The dominant Fourier component of the even, -modes is the first harmonic. Although the -modes produce smaller amplitude light variations compared with the modes, the light curves of the former have a stronger first harmonic component. If both and 2 -modes are excited simultaneously, a rich variety of light curves is possible, including those having an appreciable first harmonic component. We show that the phase difference, , between the bolometric light curve and that at a particular photon energy can possibly be used as a probe of the stellar compactness, , where and are the radius and mass of the star.

24 pages, 16 figures. submitted to MNRAS