Exploring the Possibility of Testing the No-Hair Theorem with Minkowski-deformed Regular Hairy Black Holes Via Photon Rings
Xilong Yang, Meirong Tang, Zhaoyi Xu

TL;DR
This study explores how Minkowski-deformed regular hairy black holes affect photon rings and shadows, proposing a method to test the no-hair theorem through optical observations of black hole photon rings.
Contribution
It introduces a novel analysis of photon rings around Minkowski-deformed hairy black holes, linking their optical appearance to deformation parameters for potential no-hair theorem tests.
Findings
Photon ring radius positively correlates with deformation parameter .
Black hole shadow features vary with , enabling metric distinction.
No degeneracy found in photon rings across different values.
Abstract
In this paper, we investigate the optical appearance of a regular static spherically symmetric hairy black hole within the context of Minkowski deformation governed by the parameter \(\alpha\). This black hole describes a hairy black hole with geometric deformations in the radial and temporal metric components, parameterized by \(\alpha\). The optical appearance of the black hole, illuminated by a static thin accretion disk in three toy emission function models, exhibits distinctive shadows and photon rings. Our findings reveal that for static spherically symmetric hairy Minkowski-deformed regular black holes, the event horizon radius \(r_h\), photon sphere radius \(r_{ph}\), critical impact parameter \(b_{ph}\), and innermost stable circular orbit radius \(r_{isco}\) all have a positive correlation with \(\alpha\). These parameters affect the null geodesic trajectories, shadows, and…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Relativity and Gravitational Theory · Geometric Analysis and Curvature Flows
