Effects of Compton scattering on the neutron star radius constraints in rotation-powered millisecond pulsars
arXiv:1903.04373 · doi:10.1051/0004-6361/201935442
Abstract
The aim of this work is to study the possible effects and biases on the radius constraints for rotation-powered millisecond pulsars when using Thomson approximation to describe electron scattering in the atmosphere models, instead of using exact formulation for Compton scattering. We compare the differences between the two models in the energy spectrum and angular distribution of the emitted radiation. We also analyse a self-generated synthetic phase-resolved energy spectrum, based on Compton atmosphere and the most X-ray luminous rotation-powered millisecond pulsars observed by the Neutron star Interior Composition ExploreR (NICER). We derive constraints for the neutron star parameters using both the Compton and Thomson models. The results show that the method works by reproducing the correct parameters with the Compton model. However, biases are found in size and the temperature of the emitting hot spot, when using the Thomson model. The constraints on the radius are still not significantly changed, and therefore the Thomson model seems to be adequate if we are interested only in the radius measurements using NICER.
6 pages, 9 figures, published in A&A
References in corpus (8)
- Pulse profiles of millisecond pulsars and their Fourier amplitudes
- The Oblate Schwarzschild Approximation for Light Curves of Rapidly Rotating Neutron Stars
- Extremely high precision VLBI astrometry of PSR J0437-4715 and implications for theories of gravity
- X-ray bursting neutron star atmosphere models using an exact relativistic kinetic equation for Compton scattering
- Studying Millisecond Pulsars in X-rays
- Importance of Compton scattering for radiation spectra of isolated neutron stars with weak magnetic fields
- Atmospheric Structure and Radiation Pattern for Neutron-Star Polar Caps Heated by Magnetospheric Return Currents
- Theory of Compton scattering by anisotropic electrons