Rapidly Rotating Neutron Star Collapse in Massive Scalar-Tensor Theories

Fuente: arXiv
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Main Authors: M., José Carlos Olvera, Doneva, Daniela D., Cerdá-Durán, Pablo, Font, José A., Yazadjiev, Stoytcho S.
Format: Preprint
Published: 2026
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author M., José Carlos Olvera
Doneva, Daniela D.
Cerdá-Durán, Pablo
Font, José A.
Yazadjiev, Stoytcho S.
author_facet M., José Carlos Olvera
Doneva, Daniela D.
Cerdá-Durán, Pablo
Font, José A.
Yazadjiev, Stoytcho S.
contents We present a full 3D numerical evolution code to study neutron stars in massive-scalar-tensor theories. The code is embedded in the Einstein Toolkit framework and its implementation constitutes a modified version of the Baumgarte-Shapiro-Shibata-Nakamura formalism with an additional nonminimally coupled scalar field. The approach we follow preserves the standard hydrodynamic evolution for matter fields, allowing eventually for a straightforward inclusion of more microphysical effects and better flexibility. Using this code, we examine the gravitational collapse of rapidly rotating, scalarized neutron stars to a black hole by exploring the influence of the scalar field on the dynamical features of the process and on the gravitational-wave emission. We find that for the configurations studied in this work, there is an observational degeneracy in the tensorial gravitational-wave emission between collapsing scalarized stars and their counterparts in general relativity. However, this degeneracy can be broken through the emission of scalar radiation, which carries an energy of ~10^-3 M_sun c^2. This is orders of magnitude higher than the quadrupolar emission (~10^-7 M_sun c^2) and might be used as an observational probe of modified gravity. We also find that rapid rotation can enhance this signal, since fast rotating stars can sustain larger scalar field amplitudes.
format Preprint
id arxiv_https___arxiv_org_abs_2605_16506
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Rapidly Rotating Neutron Star Collapse in Massive Scalar-Tensor Theories
M., José Carlos Olvera
Doneva, Daniela D.
Cerdá-Durán, Pablo
Font, José A.
Yazadjiev, Stoytcho S.
General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
We present a full 3D numerical evolution code to study neutron stars in massive-scalar-tensor theories. The code is embedded in the Einstein Toolkit framework and its implementation constitutes a modified version of the Baumgarte-Shapiro-Shibata-Nakamura formalism with an additional nonminimally coupled scalar field. The approach we follow preserves the standard hydrodynamic evolution for matter fields, allowing eventually for a straightforward inclusion of more microphysical effects and better flexibility. Using this code, we examine the gravitational collapse of rapidly rotating, scalarized neutron stars to a black hole by exploring the influence of the scalar field on the dynamical features of the process and on the gravitational-wave emission. We find that for the configurations studied in this work, there is an observational degeneracy in the tensorial gravitational-wave emission between collapsing scalarized stars and their counterparts in general relativity. However, this degeneracy can be broken through the emission of scalar radiation, which carries an energy of ~10^-3 M_sun c^2. This is orders of magnitude higher than the quadrupolar emission (~10^-7 M_sun c^2) and might be used as an observational probe of modified gravity. We also find that rapid rotation can enhance this signal, since fast rotating stars can sustain larger scalar field amplitudes.
title Rapidly Rotating Neutron Star Collapse in Massive Scalar-Tensor Theories
topic General Relativity and Quantum Cosmology
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2605.16506