Event Horizon Telescope Observational Constraints on Dymnikova-Type Non-Singular Black Holes in Higher Dimensions

Fuente: arXiv
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Main Authors: Errehymy, A., Khedif, Y., Daoud, M., Myrzakulov, Y., Donmez, O., Turimov, B.
Format: Preprint
Published: 2026
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author Errehymy, A.
Khedif, Y.
Daoud, M.
Myrzakulov, Y.
Donmez, O.
Turimov, B.
author_facet Errehymy, A.
Khedif, Y.
Daoud, M.
Myrzakulov, Y.
Donmez, O.
Turimov, B.
contents Black holes are among the most compelling predictions of general relativity (GR) and are now strongly supported by observations from gravitational-wave detectors and the Event Horizon Telescope (EHT). While standard black hole solutions suffer from central singularities, regular black holes avoid this issue by introducing a nonsingular core. In this work, we extend the Dymnikova regular black hole to higher dimensions using a smooth matter distribution. The resulting spacetime features a de Sitter-like core and two horizons. We analyze photon motion and show that circular photon orbits remain unstable, giving rise to a well-defined black hole shadow. Our results indicate that the shadow size grows with the black hole scale but decreases slightly as the number of dimensions increases. We also investigate thermodynamic properties, including Hawking temperature and energy emission, and find a strong dependence on dimensionality. Finally, we compare our model with EHT observations to place constraints on the parameters and highlight potential observational signatures of higher-dimensional regular black holes.
format Preprint
id arxiv_https___arxiv_org_abs_2601_06711
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Event Horizon Telescope Observational Constraints on Dymnikova-Type Non-Singular Black Holes in Higher Dimensions
Errehymy, A.
Khedif, Y.
Daoud, M.
Myrzakulov, Y.
Donmez, O.
Turimov, B.
General Relativity and Quantum Cosmology
Black holes are among the most compelling predictions of general relativity (GR) and are now strongly supported by observations from gravitational-wave detectors and the Event Horizon Telescope (EHT). While standard black hole solutions suffer from central singularities, regular black holes avoid this issue by introducing a nonsingular core. In this work, we extend the Dymnikova regular black hole to higher dimensions using a smooth matter distribution. The resulting spacetime features a de Sitter-like core and two horizons. We analyze photon motion and show that circular photon orbits remain unstable, giving rise to a well-defined black hole shadow. Our results indicate that the shadow size grows with the black hole scale but decreases slightly as the number of dimensions increases. We also investigate thermodynamic properties, including Hawking temperature and energy emission, and find a strong dependence on dimensionality. Finally, we compare our model with EHT observations to place constraints on the parameters and highlight potential observational signatures of higher-dimensional regular black holes.
title Event Horizon Telescope Observational Constraints on Dymnikova-Type Non-Singular Black Holes in Higher Dimensions
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2601.06711