arXiv · 2510.18354
Spontaneous scalarization of regular Hayward black holes in Einstein-nonlinear electromagnetic-scalar gravity
Abstract
Regular Hayward black holes provide a useful setting for investigating scalarization in theories with nonminimally coupled matter sectors. Within the framework of Einstein-nonlinear electromagnetic-scalar gravity, we identify the tachyonic threshold that signals the bifurcation from the bald Hayward background and then obtain scalarized charged black holes for both quadratic $(1-\alpha\phi^2)$ and exponential $(e^{-\alpha \phi^2})$ couplings. These configurations form a discrete set of branches classified by the number of nodes in the scalar field. The branch with $n=0$ is the fundamental branch, whereas solutions with $n\geq 1$ are excited branches. By studying radial perturbations, we find that the fundamental branch is stable for both coupling choices, which makes it the most relevant branch for future phenomenological and observational studies.
Explore related subjects
Keep this discovery
Lan-Lan Cai, Meng-Yun Lai, De-Cheng Zou, Lina Zhang, Hyat Huang. 2025-10-21. Spontaneous scalarization of regular Hayward black holes in Einstein-nonlinear electromagnetic-scalar gravity. https://doi.org/10.1088/1674-1137%2Fae836d
Cite the original work for its findings. Save a collection to share your selection of sources.