Experimental Relativity with Accretion Disk Observations
arXiv:1903.04356 · doi:10.1103/PhysRevD.100.024039
Abstract
Electromagnetic observations have been used over the past decades to understand the nature of black holes and the material around them. Our ability to learn about the fundamental physics relies on our understanding of two key ingredients in the modeling of these electromagnetic observations: the gravity theory that describes the black hole, and the astrophysics that produces the observed radiation. In this work we study our current ability to constrain and detect deviations from General Relativity using the accretion disk spectrum of stellar-mass black holes in binary systems. Our analysis combines relativistic ray-tracing and Markov-Chain Monte-Carlo sampling techniques to determine how well such tests of General Relativity can be carried out in practice. We show that even when a very simple astrophysical model for the accretion disk is assumed a priori, the uncertainties and covariances between the parameters of the model and the parameters that control the deformation from General Relativity make any test of General Relativity very challenging with accretion disk spectrum observations. We also discuss the implications of assuming that General Relativity is correct a priori on the estimation of parameters of the astrophysical model when the data is not described by Einstein's theory, which can lead to a fundamental systematic bias.
10+1 pages, 6 figures, Published in PRD
References in corpus (12)
- The Confrontation between General Relativity and Experiment
- X-ray Properties of Black-Hole Binaries
- A Metric for Rapidly Spinning Black Holes Suitable for Strong-Field Tests of the No-Hair Theorem
- Non-Spinning Black Holes in Alternative Theories of Gravity
- New parametrization for spherically symmetric black holes in metric theories of gravity
- Testing Accretion Disk Theory in Black Hole X-ray Binaries
- Bumpy Black Holes in Alternate Theories of Gravity
- Taking the Measure of the Universe: Precision Astrometry with SIM PlanetQuest
- New Constraint on Scalar Gauss-Bonnet Gravity and a Possible Explanation for the Excess of the Orbital Decay Rate in a Low-Mass X-ray Binary
- Constraints on the spacetime geometry around 10 stellar-mass black hole candidates from the disk's thermal spectrum
- Excavating black hole continuum spectrum: Possible signatures of scalar hairs and of higher dimensions
- Testing the performance and accuracy of the RELXILL model for the relativistic X-ray reflection from accretion disks