Gravity versus astrophysics in black hole images and photon rings: Equatorial emissions and spherically symmetric space-times
arXiv:2506.13482 · doi:10.1051/0004-6361/202554919
Abstract
The EHT collaboration released in 2019 the first horizon-scale images of a black hole accretion flow, opening a novel route for plasma physics comprehension and gravitational tests. Although the present unresolved images deeply depend on the astrophysical properties of the accreted matter, GR predicts that they contain highly lensed observables, the "photon rings", embodying the effects of strong-field gravity. Focusing on the supermassive black hole M87* and adopting a geometrically thin, equatorial disc as a phenomenological configuration for the accreting matter, our goal is to study the degeneracy of spacetime curvature and of physically-motivated emission processes on EHT-like images observed at 230 and 345 GHz. In a parametric framework, we simulate adaptively ray-traced images using GYOTO in various spherically-symmetric spacetime geometries, for a comprehensive class of disc velocities and realistic synchrotron emission profiles. We then extract the width and the peak position of 1D intensity cross sections on the direct image and the first photon ring. We show that, among the investigated quantities, the most appropriate observables to probe the geometry are the peak positions of the first photon ring. Small geometric deviations can be unequivocally detected, regardless of the motion of the disc, ranging from a Keplerian to a radially infalling one, if the black hole mass-to-distance estimate is accurate up to around 2%; the current uncertainty of 11% being sufficient just to access extreme deviations. The equatorial set-up of this paper, favoured by present EHT observations of M87*, is adapted to model future measurements at higher observing frequencies, where absorption effects are negligible, and with higher resolution, indispensable to resolve the photon rings. Additional work is needed to investigate if our conclusions hold for more realistic disc configurations.
Published in A&A, 16+8 pages, 9+10 figures, 3 tables
References in corpus (37)
- First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole
- First M87 Event Horizon Telescope Results. VI. The Shadow and Mass of the Central Black Hole
- First M87 Event Horizon Telescope Results. IV. Imaging the Central Supermassive Black Hole
- First M87 Event Horizon Telescope Results. V. Physical Origin of the Asymmetric Ring
- First M87 Event Horizon Telescope Results. VIII. Magnetic Field Structure near The Event Horizon
- Black Hole Shadows, Photon Rings, and Lensing Rings
- Calculating black hole shadows: Review of analytical studies
- Detection of the Schwarzschild precession in the orbit of the star S2 near the Galactic centre massive black hole
- First Sagittarius A* Event Horizon Telescope Results. V. Testing Astrophysical Models of the Galactic Center Black Hole
- A Metric for Rapidly Spinning Black Holes Suitable for Strong-Field Tests of the No-Hair Theorem
- Kinematics of the jet in M87 on scales of 100 -- 1000 Schwarzschild radii
- New parametrization for spherically symmetric black holes in metric theories of gravity
- Lensing by Kerr Black Holes
- Observing the Inner Shadow of a Black Hole: A Direct View of the Event Horizon
- Key Science Goals for the Next-Generation Event Horizon Telescope
- Images and photon ring signatures of thick disks around black holes
- Photon rings of spherically symmetric black holes and robust tests of non-Kerr metrics
- Reference Array and Design Consideration for the next-generation Event Horizon Telescope
- Monitoring the Morphology of M87* in 2009-2017 with the Event Horizon Telescope
- Photon ring test of the Kerr hypothesis: Variation in the ring shape
- The Effects of Accretion Flow Dynamics on the Black Hole Shadow of Sagittarius A
- Distinguishing gravitational and emission physics in black-hole imaging: spherical symmetry
- Improving constraints on the extended mass distribution in the Galactic Center with stellar orbits
- Photon rings as tests for alternative spherically symmetric geometries with thin accretion disks
- Accurate mapping of spherically symmetric black holes in a parameterised framework
- The Accretion flow in M87 is really MAD
- Adaptive Analytical Ray Tracing of Black Hole Photon Rings
- Universal signatures of singularity-resolving physics in photon rings of black holes and horizonless objects
- Black Hole Photon Rings Beyond General Relativity
- Prediction for the interferometric shape of the first black hole photon ring
- Demonstrating Photon Ring Existence with Single-Baseline Polarimetry
- Disks as Inhomogeneous, Anisotropic Gaussian Random Fields
- Accretion Flow Morphology in Numerical Simulations of Black Holes from the ngEHT Model Library: The Impact of Radiation Physics
- A Lensing-Band Approach to Spacetime Constraints
- Experimental Relativity with Accretion Disk Observations
- Orbital configurations of spaceborne interferometers for studying photon rings of supermassive black holes
- Multi-Frequency Models of Black Hole Photon Rings from Low-Luminosity Accretion Disks
Cited by in corpus (4)
- Semi-analytic studies of accretion disk and magnetic field geometry in M87*
- Revisiting The Gravitational Mirroring In Presence of Compact Objects
- Extreme-Lensing Signatures Revealed by Correlations of Simulated Black-Hole Movies
- Asymptotic Schwarzschild solutions in gravity and their observable effects on the photon sphere of black holes