English

Black bounce solutions via nonminimal scalar-electrodynamic couplings

General Relativity and Quantum Cosmology 2026-01-29 v1 High Energy Astrophysical Phenomena High Energy Physics - Theory

Abstract

Black-bounce (BB) solutions generalize the spacetimes of black holes, regular black holes, and wormholes, depending on the values of certain characteristic parameters. In this work, we investigate such solutions within the framework of General Relativity (GR), assuming spherical symmetry and static geometry. It is well established in the literature that, in order to sustain such geometries, the source of Einstein's equations in the BB context can be composed of a scalar field φ\varphi and a nonlinear electrodynamics (NLED). In our model, in addition to the Lagrangian associated with the scalar field in the action, we also include an interaction term of the form W(φ)L(F)W(\varphi)\mathcal{L}(F), which introduces a nonminimal coupling between the scalar field and the electromagnetic sector. Notably, the usual minimal coupling configuration is recovered by setting W(φ)=1W(\varphi)=1. In contrast to approaches where the function W(φ)W(\varphi) is assumed a priori, here we determine its functional form by modeling the radial dependence of the derivative of the electromagnetic Lagrangian as a power law, namely LF(r)Fn\mathcal{L}_F(r) \sim F^n. This approach enables us to determine W(r)W(r) directly from the obtained solutions. We apply this procedure to two specific geometries: the Simpson-Visser-type BB solution and the Bardeen-type BB solution, both analyzed in the purely magnetic (qm0q_m \neq 0, qe=0q_e=0) and purely electric (qm=0q_m=0, qe0q_e \neq 0) cases. In all scenarios, we find that these BB spacetime solutions can be described with a linear electrodynamics, which is a noteworthy result. Furthermore, we examine the regularity of the spacetime through the Kretschmann scalar and briefly discuss the associated energy conditions for the solutions obtained.

Keywords

Cite

@article{arxiv.2509.24053,
  title  = {Black bounce solutions via nonminimal scalar-electrodynamic couplings},
  author = {Daniela S. J. Cordeiro and Ednaldo L. B. Junior and José Tarciso S. S. Junior and Francisco S. N. Lobo and Jorde A. A. Ramos and Manuel E. Rodrigues and Luís F. Dias da Silva and Henrique A. Vieira},
  journal= {arXiv preprint arXiv:2509.24053},
  year   = {2026}
}

Comments

21 pages, 7 figures

R2 v1 2026-07-01T06:03:00.117Z