Dark matter signatures of black holes with Yukawa potential
A. A. Ara\'ujo Filho, Kimet Jusufi, B. Cuadros-Melgar, Genly Leon

TL;DR
This paper investigates black holes modified by a Yukawa potential, analyzing their shadows, quasinormal modes, and thermodynamics, and finds that Yukawa corrections have minimal observable effects on black hole shadows and QNM frequencies.
Contribution
It introduces a Yukawa-modified black hole solution with parameters affecting mass, shadows, and quasinormal modes, providing a detailed analysis of their astrophysical implications.
Findings
Yukawa parameters minimally affect shadow radius, changing it by about 10^{-9}
Quasinormal mode frequencies are altered by approximately 10^{-18} in the eikonal regime
Black hole thermodynamics exhibits complex behavior, including potential phase transitions.
Abstract
This study uses a nonsingular Yukawa--modified potential to obtain a static and spherically symmetric black hole solution with a cosmological constant. Such Yukawa--like corrections are encoded in two parameters, and , that modify Newton's law of gravity in large distances, and a deformation parameter , which plays an essential role in short distances. The most significant effect is encoded in , which modifies the total black hole mass with an extra mass proportional to , mimicking the dark matter effects at large distances from the black hole. On the other hand, the effect due to is small for astrophysical values. We scrutinize the \textit{quasinormal} frequencies and shadows associated with a spherically symmetric black hole and the thermodynamical behavior influenced by the Yukawa potential. In particular, the thermodynamics of…
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Taxonomy
TopicsExperimental and Theoretical Physics Studies · Astrophysical Phenomena and Observations · Pulsars and Gravitational Waves Research
