Observational signatures of Schwarzschild-MOG black holes in scalar-tensor-vector gravity: shadows and rings with different accretions

Author:

Hu ShiyangORCID,Deng Chen,Li Dan,Wu Xin,Liang Enwei

Abstract

AbstractWe study the influence of parameter $$\alpha $$ α on the optical features of Schwarzschild-MOG black holes with different thin accretions in scalar-tensor-vector gravity. As $$\alpha $$ α increases from 0, the radii of the event horizon, photon sphere, and observed shadow increase in comparison with the Schwarzschild black hole. We constrain the parameter $$\alpha $$ α with the experimental data reported by the Event Horizon Telescope Collaboration for M87$$^{*}$$ and Sagittarius A$$^{*}$$ . In the situation of spherical accretions, we unveil that the parameter $$\alpha $$ α has a positive effect on the shadow size but a negative effect on the observed specific intensities. Considering that the Schwarzschild-MOG black hole is surrounded by an optical and geometrically thin accretion disk, we find that the total observed specific intensities are mainly contributed by the direct emissions, while the photon rings and lensed rings provide small contributions. It is also found that with the increase of $$\alpha $$ α , the black hole shadow expands, the photon rings and lensed rings become larger and thicker. Besides, we emphasize that the boundary of the observed shadow cast by the aim black hole in the disk accretion scenario is determined by the direct emissions rather than the photon ring emissions. Consequently, we unveil that there is a linear relationship involving the critical impact parameter and the starting point of the direct emissions. This finding helps to use the experimental results of the Event Horizon Telescope to infer the critical impact parameter and to test General Relativity.

Funder

National Natural Science Foundation of Guangxi

National Natural Science Foundation of China

Special Funding for Guangxi Distinguished Professors

Publisher

Springer Science and Business Media LLC

Subject

Physics and Astronomy (miscellaneous),Engineering (miscellaneous)

Reference94 articles.

1. K. Schwarzschild, Über das Gravitationsfeld eines Massenpunktes nach der Einsteinschen Theorie. Math. Phys. Tech., pp. 189–196 (1916)

2. B.P. Abbott et al. [LIGO Scientific and Virgo Collaborations], Observation of gravitational waves from a binary black hole merger. Phys. Rev. Lett. 116, 061102 (2016)

3. R. Abbott et al. [LIGO Scientific and Virgo Collaborations], GW190412: observation of a binary-black-hole coalescence with asymmetric masses. Phys. Rev. D 102, 043015 (2020)

4. R. Abbott et al. [LIGO Scientific and Virgo Collaborations], GW190521: a binary black hole merger with a total mass of 150 M$$_{\odot }$$. Phys. Rev. Lett. 125, 101102 (2020)

5. J.-F. Liu et al., A wide star-black-hole binary system from radial-velocity measurements. Nature 575, 618–621 (2019)

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