Axisymmetric black hole in a non-commutative gauge theory: Classical and quantum gravity effects

Loading...
Thumbnail Image

Date

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier

Access Rights

info:eu-repo/semantics/openAccess

Abstract

This work explores both classical and quantum aspects of an axisymmetric black hole within a non-commutative gauge theory. The rotating solution is derived using a modified Newman-Janis procedure. The analysis begins with the horizon structure, ergospheres, and angular velocity. The thermodynamic properties are examined through surface gravity, focusing on the Hawking temperature, entropy, and heat capacity. In addition, the remnant mass is calculated. The Hawking radiation is treated as a tunneling process for bosonic and fermionic particles, along with the corresponding particle creation density. Geodesic motion is explored, emphasizing null geodesics, radial accelerations, the photon sphere, and black hole shadows. Finally, the gravitational lensing in the strong deflection limit is investigated.

Description

Keywords

Black holes, Noncommutative geometry, Thermodynamics, Shadows, Gravitational lensing, Particle creation, Quasinormal modes

Journal or Series

Nuclear Physics B

WoS Q Value

Scopus Q Value

Volume

1020

Issue

Citation

Endorsement

Review

Supplemented By

Referenced By