Near horizon approximation and beyond for a two-level atom falling into a Kerr-Newman black hole
Soham Sen, Rituparna Mandal, Sunandan Gangopadhyay

TL;DR
This paper explores acceleration radiation phenomena for a two-level atom falling into a Kerr-Newman black hole, extending previous near horizon approximations to more general cases and analyzing the resulting spectra and entropy.
Contribution
It advances the understanding of acceleration radiation beyond near horizon approximation for rotating and charged black holes without relying on conformal symmetry.
Findings
Planck-like spectrum observed beyond near horizon approximation
Emission of multiple photons reduces the excitation probability's Planck factor
Computed the horizon brightened acceleration radiation (HBAR) entropy for scalar fields
Abstract
In this work we investigate the phenomena of acceleration radiation for a two-level atom falling into the event horizon of a Kerr-Newman black hole. In https://link.aps.org/doi/10.1103/PhysRevD.104.065006 (Phys. Rev. D 104 (2021) 065006), it has been shown that conformal quantum mechanics has a connection to the generated Planck-like spectrum due to acceleration radiation. In this particular aspect, the near horizon approximation played a significant role. In https://link.aps.org/doi/10.1103/PhysRevD.106.025004 (Phys. Rev. D 106 (2022) 025004), we have used the beyond near horizon approximation to show that the excitation probability attains a Planck-like spectrum irrespective of the non-existence of an underlying conformal symmetry for a general class of static spherically symmetric black holes. In our analysis we have gone beyond the near horizon approximation for the rotating and…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Experimental and Theoretical Physics Studies · Quantum Electrodynamics and Casimir Effect
