Phantom RN-AdS black holes in noncommutative space

Fuente: arXiv
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Autores principales: Hamil, B., Lütfüoğlu, B. C.
Formato: Preprint
Publicado: 2025
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author Hamil, B.
Lütfüoğlu, B. C.
author_facet Hamil, B.
Lütfüoğlu, B. C.
contents We analyze the effects of noncommutativity on phantom Reissner-Nordström-Anti-de Sitter black holes by modeling mass and charge distributions with Lorentzian profiles. The modified metric function exhibits significant deviations from the classical case, leading to changes in the horizon structure and the suppression of singularities. Through a comparative thermodynamic analysis, we derive expressions for the mass, Hawking temperature, entropy, and heat capacity, identifying stability conditions and phase transitions induced by noncommutative corrections. The efficiency of the black hole as a heat engine is evaluated, showing that noncommutativity influences the thermodynamic cycle differently in the presence of phantom fields. Furthermore, we investigate the orbital motion of test particles and photons, deriving the effective potential, innermost stable circular orbits, and the shadow profile. Finally, we compute quasinormal modes to assess dynamical stability, revealing that noncommutativity modifies the damping behavior and introduces a new branch of non-oscillatory modes, absent in the classical case. Our findings provide a deeper understanding of the interplay between phantom fields, noncommutative geometry, and black hole thermodynamics, offering potential observational signatures for exotic compact
format Preprint
id arxiv_https___arxiv_org_abs_2502_20514
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Phantom RN-AdS black holes in noncommutative space
Hamil, B.
Lütfüoğlu, B. C.
High Energy Physics - Theory
We analyze the effects of noncommutativity on phantom Reissner-Nordström-Anti-de Sitter black holes by modeling mass and charge distributions with Lorentzian profiles. The modified metric function exhibits significant deviations from the classical case, leading to changes in the horizon structure and the suppression of singularities. Through a comparative thermodynamic analysis, we derive expressions for the mass, Hawking temperature, entropy, and heat capacity, identifying stability conditions and phase transitions induced by noncommutative corrections. The efficiency of the black hole as a heat engine is evaluated, showing that noncommutativity influences the thermodynamic cycle differently in the presence of phantom fields. Furthermore, we investigate the orbital motion of test particles and photons, deriving the effective potential, innermost stable circular orbits, and the shadow profile. Finally, we compute quasinormal modes to assess dynamical stability, revealing that noncommutativity modifies the damping behavior and introduces a new branch of non-oscillatory modes, absent in the classical case. Our findings provide a deeper understanding of the interplay between phantom fields, noncommutative geometry, and black hole thermodynamics, offering potential observational signatures for exotic compact
title Phantom RN-AdS black holes in noncommutative space
topic High Energy Physics - Theory
url https://arxiv.org/abs/2502.20514