Born-Infeld signatures in AdS black hole thermodynamics and gravitational lensing
Ekrem Ayd{\i}ner, Tekin Dereli, \.Izzet Sakall{\i}, Erdem Sucu, and Ece Seyma Y\"or\"uk

TL;DR
This paper explores the thermodynamics and gravitational lensing signatures of Einstein-Born-Infeld-AdS black holes, revealing how nonlinear electrodynamics influences stability, phase transitions, and observable lensing effects in various media.
Contribution
It provides a comprehensive analysis of Born-Infeld corrections on black hole thermodynamics, phase structure, heat engine efficiency, and gravitational lensing in plasma environments.
Findings
Born-Infeld corrections affect near-horizon thermodynamics and stability.
Black hole heat engine efficiencies reach up to 61% of Carnot limits.
Plasma environments modify gravitational lensing signatures, revealing dispersive effects.
Abstract
We investigate the thermodynamic and optical properties of Einstein-Born-Infeld-Anti-de Sitter (EBI-AdS) black holes (BHs). Our study derives the Hawking temperature using standard surface gravity methods and examines quantum corrections through both the Generalized Uncertainty Principle (GUP) and exponential entropy modifications, showing enhanced thermal radiation and potential remnant formation scenarios. The gravitational redshift analysis separates contributions from mass, cosmological constant, electromagnetic charge, and Born-Infeld (BI) corrections, with the latter scaling as and thus confined to near-horizon regimes. Using the Gauss-Bonnet theorem, we calculate light deflection angles in both vacuum and plasma environments, demonstrating how dispersive media can either enhance or suppress nonlinear electrodynamic signatures depending on observational configurations.…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Astrophysical Phenomena and Observations · Cosmology and Gravitation Theories
