Optical Appearance and Shadow of Kalb-Ramond Black Hole: Effects of Plasma and Accretion Models
arXiv:2506.17075 · doi:10.1140/epjc/s10052-025-14418-0
Abstract
In this paper, we study the effect of the presence of plasma and different accretion models on the shadow and optical appearance of static spherically symmetric black holes containing the Kalb-Ramond field. We derive the motion equations for photons around the Kalb-Ramond black hole and constrain the Lorentz symmetry breaking parameters and using observational data released by the Event Horizon Telescope collaboration. The results indicate that, under the static spherical accretion model, as or increase, the peak value of the observed intensity for Kalb-Ramond black holes is enhanced and consistently exceeds that of the corresponding Schwarzschild black holes. In the presence of plasma, we find that as the plasma frequency increases, the photon sphere radius increases, whereas the black hole shadow radius decreases. In addition, compared to inhomogeneous plasma, the effect of homogeneous plasma on these features is more significant. Specifically, when the plasma is homogeneous, an increase in plasma frequency further enhances the observed intensity peaks. This suggests that the shadow of the Kalb-Ramond black hole is brighter due to the presence of plasma. Additionally, for the same Kalb-Ramond black hole model parameters and plasma frequency, the shadow of the Kalb-Ramond black hole in inhomogeneous plasma is larger than in the case of homogeneous plasma. Under the thin disk accretion model, an increase in the Lorentz symmetry breaking parameters decreases the observed intensity peak and increases the thickness of the photon ring and the lensed ring. The presence of plasma significantly alters the optical appearance of Kalb-Ramond black hole, providing a possible way to distinguish Kalb-Ramond black hole from Schwarzschild black hole.
25 pages,12 figures
References in corpus (18)
- Quantum Gravity at a Lifshitz Point
- First Sagittarius A* Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole in the Center of the Milky Way
- First M87 Event Horizon Telescope Results. IV. Imaging the Central Supermassive Black Hole
- First M87 Event Horizon Telescope Results. II. Array and Instrumentation
- First M87 Event Horizon Telescope Results. III. Data Processing and Calibration
- Black Hole Shadows, Photon Rings, and Lensing Rings
- Signals for Lorentz Violation in Post-Newtonian Gravity
- The Shadow of a Spherically Accreting Black Hole
- Finite-distance gravitational deflection of massive particles by the Kerr-like black hole in the bumblebee gravity model
- Shadows and rings of the Kehagias-Sfetsos black hole surrounded by thin disk accretion
- Weak deflection angle of Kazakov-Solodukhin black hole in plasma medium using Gauss-Bonnet theorem and its greybody bonding
- Shadow and quasinormal modes of the Kerr-Newman-Kiselev-Letelier black hole
- Influence of Accretion Flow and Magnetic Charge on the Observed Shadows and Rings of the Hayward Black Hole
- Investigating shadow images and rings of the charged Horndeski black hole illuminated by various thin accretions
- Probing Geometric Proca in Metric-Palatini Gravity with Black Hole Shadow and Photon Motion
- The intrinsic structure of Sagittarius A* at 1.3 cm and 7 mm
- The shadows of accelerating Kerr-Newman black hole and constraints from M87*
- Shadow of Kottler black hole in the presence of plasma for a co-moving observer