Galactic Pure Lovelock Blackholes: Geometry, stability, and Hawking temperature

Fuente: arXiv
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Main Authors: Singha, Chiranjeeb, Biswas, Shauvik
Format: Preprint
Published: 2023
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author Singha, Chiranjeeb
Biswas, Shauvik
author_facet Singha, Chiranjeeb
Biswas, Shauvik
contents In this article, we will first-time model galactic black holes in pure Lovelock gravity. Even though working with higher spacetime dimensions, we assume (implicitly) the Hernquist-type mass profile for the galaxy in such a way that the horizon structure of a pure LoveLock black hole remains intact. In this way, we will model the galactic pure Lovelock black hole with arbitrary dimension ($d$) and order ($N$). Then, we will specialize this technique for critical dimension $d=3N+1$. We want to see how the galactic parameters affect the time domain single, quasinormal modes, photon sphere, innermost stable circular orbits (ISCO), and shadow radius. The time domain signal may allow us to identify the galactic parameters as well as to distinguish them from their isolated pure Lovelock counterparts if it is observed in future generations of gravitational wave measurements. We also calculate Hawking temperature for the same setup and want to see how Hawking's temperature will be affected due to the presence of a galaxy. It shows that the presence of a galactic halo can quench Hawking temperature.
format Preprint
id arxiv_https___arxiv_org_abs_2309_01760
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Galactic Pure Lovelock Blackholes: Geometry, stability, and Hawking temperature
Singha, Chiranjeeb
Biswas, Shauvik
General Relativity and Quantum Cosmology
In this article, we will first-time model galactic black holes in pure Lovelock gravity. Even though working with higher spacetime dimensions, we assume (implicitly) the Hernquist-type mass profile for the galaxy in such a way that the horizon structure of a pure LoveLock black hole remains intact. In this way, we will model the galactic pure Lovelock black hole with arbitrary dimension ($d$) and order ($N$). Then, we will specialize this technique for critical dimension $d=3N+1$. We want to see how the galactic parameters affect the time domain single, quasinormal modes, photon sphere, innermost stable circular orbits (ISCO), and shadow radius. The time domain signal may allow us to identify the galactic parameters as well as to distinguish them from their isolated pure Lovelock counterparts if it is observed in future generations of gravitational wave measurements. We also calculate Hawking temperature for the same setup and want to see how Hawking's temperature will be affected due to the presence of a galaxy. It shows that the presence of a galactic halo can quench Hawking temperature.
title Galactic Pure Lovelock Blackholes: Geometry, stability, and Hawking temperature
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2309.01760