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February 8, 2026The European Physical Journal C4 citationsOpen Access

Periodic orbits and quasinormal modes of a black hole surrounded by King dark matter halo

HHHassan HassanabadiJZJing ZhangDGDhruba Jyoti Gogoi

Key Points

  • The research aims to analyze how King dark matter influences the thermal and dynamical characteristics of black holes.
  • Derived modified metric from King density profile
  • Analyzed Hawking radiation and QNM spectra using Mashhoon and WKB methods
  • Assessed effects of dark matter on photon sphere and shadow radius
  • Hawking temperature decreases due to dark matter presence
  • Larger horizon radius increases radiation sparsity
  • QNM frequencies and decay rates diminish with dark matter parameters
  • Dark matter alters orbital stability and particle motion around the black hole

Abstract

Abstract We examine the Hawking radiation sparsity and quasinormal mode (QNM) spectra of a Schwarzschild black hole surrounded by the King dark matter distribution. The modified metric, derived from the King density profile, yields altered expressions for the lapse function, mass, and Hawking temperature. The presence of dark matter reduces the Hawking temperature, indicating suppressed thermal emission. Analysis of radiation sparsity reveals its dependence on the horizon radius, with larger scale radius R and central density ₀ ρ 0 enhancing sparsity compared to the constant value in the Schwarzschild case. The photon sphere and shadow radius increase with R and ₀ ρ 0, suggesting enlarged black hole shadows under dark matter influence. Hawking emission rates exhibit a downward shift in both peak intensity and frequency. The QNM spectra, obtained via the Mashhoon and 3rd-order Wentzel–Kramers–Brillouin (WKB) methods, show that both the oscillation frequencies and damping or decay rate decrease with the dark matter parameter = 8 ₀ R² α = 8 π ρ 0 R 2. This study also examines how King dark matter halo affects periodic particle motion around a black hole, showing that it alters orbital stability and enhances precession, leading to transitions from bound to unbound motion. These results collectively demonstrate that King dark matter substantially modifies the thermodynamic and dynamical properties of black holes, offering potential observational imprints in black hole shadow and gravitational wave studies.

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Cite This Study

Hassanabadi et al. (2026) studied this question.

synapsesocial.com/papers/698828410fc35cd7a8847a1dhttps://doi.org/10.1140/epjc/s10052-026-15344-5
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