Analytic Computation of Dilaton Black Hole Quasinormal Modes via Seiberg-Witten Theory

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Autori principali: Jiang, Jiahui, Cai, Wenhe
Natura: Preprint
Pubblicazione: 2025
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author Jiang, Jiahui
Cai, Wenhe
author_facet Jiang, Jiahui
Cai, Wenhe
contents We study the quasinormal modes (QNMs) of dilaton black holes in Einstein-Maxwell-dilaton gravity through a correspondence with the quantum Seiberg-Witten (SW) curve of $\mathcal{N}=2$ SU(2) gauge theory with $N_f=3$ hypermultiplets. By mapping both the black hole perturbation equation and the quantum SW curve to the confluent Heun form, the QNM problem is reformulated in a gauge-theoretic framework, and the spectrum is obtained via the SW quantization condition. The resulting frequencies show excellent agreement with those computed using the WKB and continued fraction methods, with typical deviations below $10^{-3}$. The QNM spectrum exhibits consistent trends: increasing the black hole charge or scalar field mass raises the oscillation frequency, while higher angular momentum reduces the damping rate. These results demonstrate the precision of the quantum SW framework in describing black hole perturbations and reveal new links between supersymmetric gauge theories and gravitational dynamics.
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id arxiv_https___arxiv_org_abs_2511_17143
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Analytic Computation of Dilaton Black Hole Quasinormal Modes via Seiberg-Witten Theory
Jiang, Jiahui
Cai, Wenhe
High Energy Physics - Theory
General Relativity and Quantum Cosmology
We study the quasinormal modes (QNMs) of dilaton black holes in Einstein-Maxwell-dilaton gravity through a correspondence with the quantum Seiberg-Witten (SW) curve of $\mathcal{N}=2$ SU(2) gauge theory with $N_f=3$ hypermultiplets. By mapping both the black hole perturbation equation and the quantum SW curve to the confluent Heun form, the QNM problem is reformulated in a gauge-theoretic framework, and the spectrum is obtained via the SW quantization condition. The resulting frequencies show excellent agreement with those computed using the WKB and continued fraction methods, with typical deviations below $10^{-3}$. The QNM spectrum exhibits consistent trends: increasing the black hole charge or scalar field mass raises the oscillation frequency, while higher angular momentum reduces the damping rate. These results demonstrate the precision of the quantum SW framework in describing black hole perturbations and reveal new links between supersymmetric gauge theories and gravitational dynamics.
title Analytic Computation of Dilaton Black Hole Quasinormal Modes via Seiberg-Witten Theory
topic High Energy Physics - Theory
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2511.17143