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Testing the Kerr nature of the supermassive black hole in Ark 564

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arxiv 1804.10380 v2 pith:ROBKS32S submitted 2018-04-27 gr-qc astro-ph.HE

classification gr-qcastro-ph.HE
keywords alphablackeinsteingravityholesupermassivebeyondconfidence
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abstract

Einstein's theory of general relativity has been extensively tested in weak gravitational fields, mainly with experiments in the Solar System and observations of radio pulsars, and current data agree well with the theoretical predictions. Nevertheless, there are a number of scenarios beyond Einstein's gravity that have the same predictions for weak fields and present deviations only when gravity becomes strong. Here we try to test general relativity in the strong field regime. We fit the X-ray spectrum of the supermassive black hole in Ark 564 with a disk reflection model beyond Einstein's gravity, and we are able to constrain the black hole spin $a_*$ and the Johannsen deformation parameters $\alpha_{13}$ and $\alpha_{22}$ separately. For $\alpha_{22} = 0$, we find $a_* > 0.96$ and $-1.0 < \alpha_{13} < 0.2$ with a 99% confidence level. For $\alpha_{13} = 0$, we get $a_* > 0.96$ and $-0.1 < \alpha_{22} < 0.9$ with a 99% confidence level. Our measurements are thus consistent with the hypothesis that the supermassive compact object in Ark 564 can be described by the Kerr metric.

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Cited by 1 Pith paper

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  1. Constraining ModMax Black Holes with EHT and GRAVITY Observations: Optical Signatures and Accretion Disk Properties

    gr-qc 2026-08 conditional novelty 4.0 of 10

    Combining EHT shadow observations of M87* and Sgr A* with mass and distance priors yields 95% upper limits Q < 0.391 and v < 4.153 on the ModMax black hole charge and nonlinearity parameter.

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