Scalar emission from neutron star-black hole binaries in scalar-tensor theories with kinetic screening

Fuente: arXiv
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Main Authors: Cayuso, Ramiro, Kuntz, Adrien, Bezares, Miguel, Barausse, Enrico
Format: Preprint
Published: 2024
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author Cayuso, Ramiro
Kuntz, Adrien
Bezares, Miguel
Barausse, Enrico
author_facet Cayuso, Ramiro
Kuntz, Adrien
Bezares, Miguel
Barausse, Enrico
contents We explore scalar radiation from neutron star-black hole binaries in scalar-tensor theories with kinetic screening ($K$-essence). Using 3+1 numerical relativity simulations in the decoupling limit, we investigate scalar dipole and quadrupole radiation for different values of the strong coupling constant $Λ$. Our results show that kinetic screening effectively suppresses the scalar dipole radiation as $Λ$ decreases. This is validated by comparing to analytic predictions for the screening of dipole scalar emission, with which our numerical results show good agreement. However, our numerical simulations show that the suppression of scalar quadrupole radiation is less efficient, even when the screening radius exceeds the wavelength of the emitted radiation. In fact, the dependence of the scalar quadrupole amplitude on $Λ$ flattens out for the smallest $Λ$ that we can simulate, and the quadrupole amplitude is suppressed only by a factor $\lesssim 3$ relative to the Fierz-Jordan-Brans-Dicke case. Overall, our study shows that scalar quadrupole radiation from mixed binaries may be used to place constraints on $K$-essence theories with next-generation gravitational-wave detectors.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16367
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Scalar emission from neutron star-black hole binaries in scalar-tensor theories with kinetic screening
Cayuso, Ramiro
Kuntz, Adrien
Bezares, Miguel
Barausse, Enrico
General Relativity and Quantum Cosmology
We explore scalar radiation from neutron star-black hole binaries in scalar-tensor theories with kinetic screening ($K$-essence). Using 3+1 numerical relativity simulations in the decoupling limit, we investigate scalar dipole and quadrupole radiation for different values of the strong coupling constant $Λ$. Our results show that kinetic screening effectively suppresses the scalar dipole radiation as $Λ$ decreases. This is validated by comparing to analytic predictions for the screening of dipole scalar emission, with which our numerical results show good agreement. However, our numerical simulations show that the suppression of scalar quadrupole radiation is less efficient, even when the screening radius exceeds the wavelength of the emitted radiation. In fact, the dependence of the scalar quadrupole amplitude on $Λ$ flattens out for the smallest $Λ$ that we can simulate, and the quadrupole amplitude is suppressed only by a factor $\lesssim 3$ relative to the Fierz-Jordan-Brans-Dicke case. Overall, our study shows that scalar quadrupole radiation from mixed binaries may be used to place constraints on $K$-essence theories with next-generation gravitational-wave detectors.
title Scalar emission from neutron star-black hole binaries in scalar-tensor theories with kinetic screening
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2410.16367