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May 19, 2026The European Physical Journal C0 citationsOpen Access

Optical and thermodynamic properties of an analytical black hole solution in the steep Dehnen (1, 4, 52) dark-matter halo

DSDavid Senjaya

Key Points

  • This work aims to analyze how a Dehnen dark-matter halo influences the properties of a black hole, particularly in relation to thermodynamics and optical behaviors.
  • Consider a static, spherically symmetric black hole in a Dehnen (1,4,5/2) dark-matter halo.
  • Derive null geodesics from a variational principle to analyze photon motion without linear expansions.
  • Examine thermodynamic properties including enthalpy, entropy, temperature, and Gibbs free energy.
  • The dark-matter environment significantly alters the black hole's thermodynamic structure.
  • Higher halo density or size improves thermodynamic stability.
  • Phase transitions occur in strong gravity settings, which are not predicted by linear approximations.

Abstract

Abstract Dark-matter halos can significantly influence the physical properties of black holes, particularly when realistic density profiles are taken into account. In this work, we consider a static, spherically symmetric black hole embedded in a Dehnen (1, 4, 52) 1, 4, 5 2 dark-matter halo. This configuration is the steepest analytically tractable Dehnen model with inner density slope γ 3, providing a natural setting to probe strong-gravity effects in cuspy dark-matter environments. Unlike previous analyses that rely on linear expansions in the halo parameters, we derive the null geodesics directly from the variational principle and obtain an exact description of photon motion in the full black hole-halo spacetime. This approach allows the light-ring structure and the associated gravitational lensing properties to be determined without perturbative approximations. We further examine the thermodynamic behavior of the system by constructing the enthalpy, entropy, temperature, heat capacity, and Gibbs free energy. We find that the dark-matter environment substantially modifies the thermodynamic structure of the black hole. In particular, increasing the halo density or size enhances thermodynamic stability and can trigger phase-transition that is absent in linearized approximation.

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Cite This Study

David Senjaya (2026) studied this question.

synapsesocial.com/papers/6a0bfde8166b51b53d3793b0https://doi.org/10.1140/epjc/s10052-026-15801-1
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