4.5 Article

Strong gravitational lensing and shadow constraint from M87*of slowly rotating Kerr-like black hole

期刊

ANNALS OF PHYSICS
卷 447, 期 -, 页码 -

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.aop.2022.169147

关键词

Black hole shadow cast; Strong gravitational lensing; Bumblebee gravity theory

资金

  1. Fok Ying Tung Education Foundation
  2. Natural Science Foundation of Jiangsu Province
  3. [171006]
  4. [BK20211601]

向作者/读者索取更多资源

Motivated by the recent EHT observations and the possibility of Lorentz symmetry being broken in gravity, this study applies the Einstein bumblebee gravity with Lorentz violation to investigate the strong gravitational lensing effect and black hole shadow. The results show significant effects of the Lorentz violation parameter on lensing observables and the luminosity of the black hole shadow.
Motivated by (i) more and more interest in strong gravitational lensing by supermassive black holes due to the achievement of EHT observations, (ii) the ongoing popular topic on the possi-bility of Lorentz symmetry being broken in gravitation and its consequences, we will apply the Einstein bumblebee gravity with Lorentz violation (LV) to the study of strong gravitational lensing effect and the black hole shadow of slowly rotating Kerr-like black hole. In the strong gravitational lensing sector, we first calculate the deflection angle; then treating the slowly rotating Kerr-like black hole as supermassive M87* black hole, we eval-uate the gravitational lensing observables (position, separation and magnification) and the time delays between the relativistic images. In the black hole shadow sector, we show the effect of LV parameter on the luminosity of the black hole shadow and photon sphere using the infalling spherical accretion. Moreover, we explore the dependence of various shadow observables on the LV parameter, and then give the possible constraint on the LV parameter by M87* black hole of EHT observations. We find that the LV parameter shows significant effect on the strong gravitational lensing effect, the black hole shadow and photon sphere luminosity by accretion material. Our results point out that the future generations of EHT observation may help to distinguish the Einstein bumblebee gravity from GR, and also give a possible constrain on the LV parameter. (c) 2022 Elsevier Inc. All rights reserved.

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