On the spectrum and polarization of magnetar flare emission
arXiv:1705.01130 · doi:10.1093/mnras/stx1086
Abstract
Bursts and flares are among the distinctive observational manifestations of magnetars, isolated neutron stars endowed with an ultra-strong magnetic field (-- G). It is believed that these events arise in a hot electron-positron plasma which remains trapped within the closed magnetic field lines. We developed a simple radiative transfer model to simulate magnetar flare emission in the case of a steady trapped fireball. After dividing the fireball surface in a number of plane-parallel slabs, the local spectral and polarization properties are obtained integrating the radiative transfer equations for the two normal modes. We assume that magnetic Thomson scattering is the dominant source of opacity, and neglect contributions from second-order radiative processes, although double-Compton scattering is accounted for in establishing local thermal equilibrium in the fireball atmospheric layers. The observed spectral and polarization properties as measured by a distant observer are obtained summing the contributions from the patches which are visible for a given viewing geometry by means of a ray-tracing code. The spectra we obtained in the 1-100 keV energy range are thermal and can be described in terms of the superposition of two blackbodies. The blackbody temperature and the emitting area ratio are in broad agreement with the available observations. The predicted linear polarization degree is in general greater than 80% over the entire energy range and should be easily detectable by new-generation X-ray polarimeters, like IXPE, XIPE and eXTP.
19 pages, 14 figures, 1 table, accepted for publication in MNRAS
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Cited by in corpus (10)
- X-ray spectra and polarization from magnetar candidates
- Physics and astrophysics of strong magnetic field systems with eXTP
- Spectral Modification of Magnetar Flares by Resonant Cyclotron Scattering
- Polarized Radiation Transfer in Neutron Star Surface Layers
- Intensity and Polarization Characteristics of Extended Neutron Star Surface Regions
- Systematic Analysis of the Effects of Mode Conversion on Thermal Radiation from Neutron Stars
- Axion-photon multimessenger astronomy with giant flares
- Fitting XMM-Newton Observations of the AXP 1RXS J170849.0-400910 with four magnetar surface emission models, and predictions for X-ray polarization observations with IXPE
- Deep upper limit on the optical emission during a hard X-ray burst from the magnetar SGR J1935+2154
- Pulsating ultraluminous X-ray sources: modeling the thermal emission and polarization properties