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Effective Potential and Topological Photon Spheres: A Novel Approach to Black Hole Parameter Classification
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In this paper, we base our analysis on the assumption that the existence of a photon sphere is an intrinsic feature of any ultra-compact gravitational structure with spherical symmetry. Utilizing the concept of a topological photon sphere, we categorize the behaviors of various gravitational models based on the structure of their photon spheres. This innovative approach enables us to define boundaries for black hole parameters, subsequently allowing us to classify the model as either a black hole or a naked singularity. Indeed, we will demonstrate that the presence of this interplay between the gravitational structure and the existence of a photon sphere is a unique advantage that can be utilized from both perspectives. Our observations indicate that a gravitational model typically exhibits the behavior of a horizonless structure (or a naked singularity) when a minimum effective potential (a stable photon sphere) appears within the studied spacetime region. Additionally, in this study, we tried to investigate the effect of this structure on the behavior of the photon sphere by choosing models that are affected by the Perfect Fluid Dark Matter (PFDM). Finally, by analyzing a model with multiple event horizons, we show that the proposed method remains applicable even in such scenarios.
Forward citations
Cited by 3 Pith papers
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For GUP-, EUP-, and Rainbow-corrected Van der Waals black holes, topological charge patterns are computed, but the GUP universality check is compromised by a sign error in the entropy inversion.
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Thermodynamic Curvature and Topological Insights of Hayward Black Holes with String Fluids
For Hayward-AdS black holes with string fluids, the normalized thermodynamic curvature is mostly negative but becomes repulsive for high charge at small volume, and the total topological charge is W=0 for epsilon=-1 a...
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