English

Rotating black hole shadows in metric-affine bumblebee gravity

General Relativity and Quantum Cosmology 2026-04-29 v2 High Energy Physics - Theory

Abstract

In this work, we investigate the structure of black hole shadows in the bumblebee gravity model formulated within the metric-affine framework, which incorporates spontaneous Lorentz symmetry breaking (LSB) through a vector field BμB_\mu with a non-zero vacuum expectation value. We analyze the influence of the dimensionless rotation parameter a=J/Ma = J/M and the Lorentz-violating (LV) coefficient X=ξb2X = \xi b^2 on the photon sphere radius, the critical impact parameter, and the shadow morphology. Using ray-tracing simulations with the GYOTO code and accretion disks, we observe that increasing values of XX induce progressive vertical flattening, asymmetric ``teardrop''-shaped deformations, and local collapse of the lower silhouette region, interacting with the rotational Doppler effect. These anisotropic signatures distinguish the bumblebee model from the standard Kerr metric and provide observational tests for LSB effects in strong gravity regimes, potentially detectable by the Event Horizon Telescope in sources such as M87* and Sgr A*.

Keywords

Cite

@article{arxiv.2603.28722,
  title  = {Rotating black hole shadows in metric-affine bumblebee gravity},
  author = {Jose R. Nascimento and Ana R. M. Oliveira and Albert Yu. Petrov and Paulo J. Porfírio and Amilcar R. Queiroz},
  journal= {arXiv preprint arXiv:2603.28722},
  year   = {2026}
}

Comments

35 pages, 10 figures