X-ray polarisation signatures in bombarded magnetar atmospheres
arXiv:2409.11523 · doi:10.1093/mnras/stae2163
Abstract
Magnetars are neutron stars that host huge, complex magnetic fields which require supporting currents to flow along the closed field lines. This makes magnetar atmospheres different from those of passively cooling neutron stars because of the heat deposited by backflowing charges impinging on the star surface layers. This particle bombardment is expected to imprint the spectral and, even more, the polarisation properties of the emitted thermal radiation. We present solutions for the radiative transfer problem for bombarded plane-parallel atmospheres in the high magnetic field regime. The temperature profile is assumed a priori, and selected in such a way to reflect the varying rate of energy deposition in the slab (from the impinging currents and/or from the cooling crust). We find that thermal X-ray emission powered entirely by the energy released in the atmosphere by the magnetospheric back-bombardment is linearly polarised and X-mode dominated, but its polarisation degree is significantly reduced (down to ) when compared with that expected from a standard atmosphere heated only from the cooling crust below. By increasing the fraction of heat flowing in from the crust the polarisation degree of the emergent radiation increases, first at higher energies ( keV) and then in the entire soft X-ray band. We use our models inside a ray-tracing code to derive the expected emission properties as measured by a distant observer and compare our results with recent IXPE observations of magnetar sources.
9 pages, 9 figures, accepted for publication in MNRAS
References in corpus (8)
- Physics of Strongly Magnetized Neutron Stars
- Corona of Magnetars
- X-ray spectra and polarization from magnetar candidates
- A strong X-ray polarization signal from the magnetar 1RXS J170849.0-400910
- Atmospheric Structure and Radiation Pattern for Neutron-Star Polar Caps Heated by Magnetospheric Return Currents
- X-ray Polarisation in Magnetar Atmospheres -- Effects of Mode Conversion
- Model atmospheres and thermal spectra of magnetized neutron stars
- The detection of polarized x-ray emission from the magnetar 1E 2259+586