Gravitational Waves from Strongly Magnetized Eccentric Neutron Star Binaries

Fuente: arXiv
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Main Authors: Prasad, R., Doke, Anushka, Kumar, Prayush
Format: Preprint
Published: 2025
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author Prasad, R.
Doke, Anushka
Kumar, Prayush
author_facet Prasad, R.
Doke, Anushka
Kumar, Prayush
contents We study the imprint of magnetic fields on gravitational waves emitted during the inspiral phase of eccentric binary neutron star systems. While observations indicate that neutron stars typically exhibit strong magnetic fields in the range of $10^{14}$-$10^{15}\,\mathrm{G}$, theoretical models allow for fields as high as $ \sim 10^{17-18}\,\mathrm{G}$. In binaries, the fate of these fields depends on the formation pathway: in systems formed through isolated evolution, magnetic fields may decay over long inspiral timescales. In contrast, binaries formed via dynamical capture can retain substantial eccentricity and strong fields until merger, potentially altering the gravitational waveform. We consider two magnetic effects: magnetic interaction between the neutron stars and electromagnetic radiation from the system's effective dipole, and identify regimes where each dominates. Using a perturbative framework, we compute the associated energy loss and gravitational wave phase evolution. We find that for binaries with strong and comparable magnetic fields, $10^{14}\,\mathrm{G}$ fields may be detectable up to $\sim 10 \, \mathrm{Mpc}$ with DECIGO and the Einstein Telescope, while $10^{15}\,\mathrm{G}$ fields extend the reach to several hundred Mpc. For extreme fields of $10^{16}\,\mathrm{G}$, third-generation detectors could be sensitive out to Gpc scales. In contrast, LIGO (O5) is limited to galactic distances: $10^{15}\,\mathrm{G}$ fields are detectable only within $\sim 1\,\mathrm{Mpc}$, and only ultrastrong fields ($\sim 10^{16}$-$10^{17}\,\mathrm{G}$) are potentially observable to 700 Mpc. In highly asymmetric systems, where dipole radiation dominates, the gravitational wave dephasing is significantly suppressed, reducing the detection horizon. These findings suggest that current and future gravitational wave observatories may be capable of identifying magnetic effects in binaries.
format Preprint
id arxiv_https___arxiv_org_abs_2508_08234
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Gravitational Waves from Strongly Magnetized Eccentric Neutron Star Binaries
Prasad, R.
Doke, Anushka
Kumar, Prayush
High Energy Astrophysical Phenomena
General Relativity and Quantum Cosmology
We study the imprint of magnetic fields on gravitational waves emitted during the inspiral phase of eccentric binary neutron star systems. While observations indicate that neutron stars typically exhibit strong magnetic fields in the range of $10^{14}$-$10^{15}\,\mathrm{G}$, theoretical models allow for fields as high as $ \sim 10^{17-18}\,\mathrm{G}$. In binaries, the fate of these fields depends on the formation pathway: in systems formed through isolated evolution, magnetic fields may decay over long inspiral timescales. In contrast, binaries formed via dynamical capture can retain substantial eccentricity and strong fields until merger, potentially altering the gravitational waveform. We consider two magnetic effects: magnetic interaction between the neutron stars and electromagnetic radiation from the system's effective dipole, and identify regimes where each dominates. Using a perturbative framework, we compute the associated energy loss and gravitational wave phase evolution. We find that for binaries with strong and comparable magnetic fields, $10^{14}\,\mathrm{G}$ fields may be detectable up to $\sim 10 \, \mathrm{Mpc}$ with DECIGO and the Einstein Telescope, while $10^{15}\,\mathrm{G}$ fields extend the reach to several hundred Mpc. For extreme fields of $10^{16}\,\mathrm{G}$, third-generation detectors could be sensitive out to Gpc scales. In contrast, LIGO (O5) is limited to galactic distances: $10^{15}\,\mathrm{G}$ fields are detectable only within $\sim 1\,\mathrm{Mpc}$, and only ultrastrong fields ($\sim 10^{16}$-$10^{17}\,\mathrm{G}$) are potentially observable to 700 Mpc. In highly asymmetric systems, where dipole radiation dominates, the gravitational wave dephasing is significantly suppressed, reducing the detection horizon. These findings suggest that current and future gravitational wave observatories may be capable of identifying magnetic effects in binaries.
title Gravitational Waves from Strongly Magnetized Eccentric Neutron Star Binaries
topic High Energy Astrophysical Phenomena
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2508.08234