A stabilization mechanism for excited fermion-boson stars
Fabrizio Di Giovanni, Saeed Fakhry, Nicolas Sanchis-Gual, Juan Carlos, Degollado, Jos\'e A. Font

TL;DR
This paper investigates the nonlinear stability of excited fermion-boson stars, revealing a gravitational stabilization mechanism that differs from purely bosonic stars, through numerical simulations of their formation and stability.
Contribution
It introduces a new gravitational stabilization mechanism for excited fermion-boson stars, demonstrated via numerical relativity simulations, expanding understanding of multi-component stellar stability.
Findings
Excited fermion-boson stars can be stabilized by a gravitational mechanism.
The stabilization is independent of the matter type, unlike in pure boson stars.
Numerical simulations show stable formation from generic initial data.
Abstract
We study numerically the nonlinear stability of {\it excited} fermion-boson stars in spherical symmetry. Such compound hypothetical stars, composed by fermions and bosons, are gravitationally bound, regular, and static configurations described within the coupled Einstein-Klein-Gordon-Euler theoretical framework. The excited configurations are characterized by the presence in the radial profile of the (complex, massive) scalar field -- the bosonic piece -- of at least one node across the star. The dynamical emergence of one such configuration from the accretion of a cloud of scalar field onto an already-formed neutron star, was numerically revealed in our previous investigation. Prompted by that finding we construct here equilibrium configurations of excited fermion-boson stars and study their stability properties using numerical-relativity simulations. In addition, we also analyze their…
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