X-ray Polarimetry as a Tool to Measure the Black Hole Spin in Microquasars: Simulations of IXPE Capabilities
arXiv:2301.04002 · doi:10.1093/mnras/stad077
Abstract
Measurements of the angular momentum (spin) of astrophysical black holes are extremely important, as they provide information on the black hole formation and evolution. We present simulated observations of a X-ray binary system with the Imaging X-ray Polarimetry Explorer (IXPE), with the aim to study the robustness of black hole spin and geometry measurements using X-ray polarimetry. As a representative example, we used the parameters of GRS 1915+105 in its former unobscured, soft state. In order to simulate the polarization properties, we modeled the source emission with a multicolor blackbody accounting for thermal radiation from the accretion disk, including returning radiation. Our analysis shows that the polarimetric observations in the X-ray waveband will be able to estimate both spin and inclination of the system with a good precision (without returning radiation we obtained for the lowest spin (0.4/0.998 40%) for spin and (30/70 43%) for inclination, while for the higher spin values we obtained ( 12%) for spin and ( 29%) for inclination, within 1 errors). When focusing on the case of returning radiation and treating inclination as a known parameter, we were able to successfully reconstruct spin and disk albedo in ( 15%) interval and albedo (45%) intervals within 1 errors. We conclude that X-ray polarimetry will be a useful tool to constrain black hole spins, in addition to timing and spectral-fitting methods.
11 pages, 10 figures
References in corpus (7)
- X-ray Properties of Black-Hole Binaries
- A Parallax Distance to the Microquasar GRS 1915+105 and a Revised Estimate of its Black Hole Mass
- Broad iron K-alpha emission lines as a diagnostic of black hole spin
- Three-Dimensional Simulations of Magnetized Thin Accretion Disks around Black Holes: Stress in the Plunging Region
- Thermal disc emission from a rotating black hole: X-ray polarization signatures
- Constraining the size of the corona with fully relativistic calculations of spectra of extended corona. I - the Monte Carlo radiative transfer code
- Spectral and polarization properties of black hole accretion disc emission: including absorption effects