Quantumness near a Schwarzschild black hole

Fuente: arXiv
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Main Authors: Haddadi, S., Yurischev, M. A., Abd-Rabbou, M. Y., Azizi, M., Pourkarimi, M. R., Ghominejad, M.
Format: Preprint
Published: 2023
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author Haddadi, S.
Yurischev, M. A.
Abd-Rabbou, M. Y.
Azizi, M.
Pourkarimi, M. R.
Ghominejad, M.
author_facet Haddadi, S.
Yurischev, M. A.
Abd-Rabbou, M. Y.
Azizi, M.
Pourkarimi, M. R.
Ghominejad, M.
contents The merging of quantum information science with the relativity theory presents novel opportunities for understanding the enigmas surrounding the transmission of information in relation to black holes. For this purpose, we study the quantumness near a Schwarzschild black hole in a practical model under decoherence. The scenario we consider in this paper is that a stationary particle in the flat region interacts with its surroundings while another particle experiences free fall in the vicinity of a Schwarzschild black hole's event horizon. We explore the impacts of Hawking radiation and decoherence on the system under investigation and find that these effects can limit the survival of quantum characteristics, but cannot destroy them completely. Hence, the results of this study possess the potential to yield valuable insights into the comprehension of the quantum properties of a real system operating within a curved space-time framework.
format Preprint
id arxiv_https___arxiv_org_abs_2310_15675
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Quantumness near a Schwarzschild black hole
Haddadi, S.
Yurischev, M. A.
Abd-Rabbou, M. Y.
Azizi, M.
Pourkarimi, M. R.
Ghominejad, M.
General Relativity and Quantum Cosmology
Space Physics
Quantum Physics
The merging of quantum information science with the relativity theory presents novel opportunities for understanding the enigmas surrounding the transmission of information in relation to black holes. For this purpose, we study the quantumness near a Schwarzschild black hole in a practical model under decoherence. The scenario we consider in this paper is that a stationary particle in the flat region interacts with its surroundings while another particle experiences free fall in the vicinity of a Schwarzschild black hole's event horizon. We explore the impacts of Hawking radiation and decoherence on the system under investigation and find that these effects can limit the survival of quantum characteristics, but cannot destroy them completely. Hence, the results of this study possess the potential to yield valuable insights into the comprehension of the quantum properties of a real system operating within a curved space-time framework.
title Quantumness near a Schwarzschild black hole
topic General Relativity and Quantum Cosmology
Space Physics
Quantum Physics
url https://arxiv.org/abs/2310.15675