Compact stars in Einstein-scalar-Gauss-Bonnet gravity: regular and divergent scalar field configurations
Roberto D. Alba Q., Javier Chagoya, Armando A. Roque

TL;DR
This paper explores new types of compact stars in Einstein-scalar-Gauss-Bonnet gravity, revealing configurations with regular and divergent scalar fields, and discusses their potential observational signatures and stability properties.
Contribution
It identifies two classes of scalar field configurations in Einstein-scalar-Gauss-Bonnet gravity, including regular and divergent cases, and analyzes their astrophysical implications.
Findings
Existence of regular scalar field compact stars connected to GR
Divergent scalar field solutions with regular geometry
Stars exceeding known compactness limits and acting as super-emitters
Abstract
We investigate static, spherically symmetric solutions in Einstein-scalar-Gauss-Bonnet gravity non-minimally coupled to a massless real scalar field, both in vacuum and in the presence of fermionic matter. Focusing on a specific quadratic scalar-Gauss-Bonnet coupling, we identify two distinct classes of compact objects: one with a regular scalar field at the origin -- connected to general relativity in an appropriate limit -- and another {one} with a divergent scalar field at the origin but a regular geometry. We analyze both purely scalar and matter-supported (hybrid) configurations, showing that the former can describe a broad class of compact objects, while the latter can reproduce neutron star-like masses even when modeled with a simple polytropic equation of state. Furthermore, we highlight distinctive phenomenological signatures, including the ability of these stars to exceed…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Cosmology and Gravitation Theories · Astro and Planetary Science
