The diverse morphology of gravitational wave signals from merging neutron-star white-dwarf binaries

Fuente: arXiv
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Main Authors: Yu, Shenghua, Lu, Youjun, Jeffery, C. Simon, Han, Zhanwen, Liu, DongDong, Yang, Jie, Fan, Xilong, Peng, Bo, Li, Jianbin
Format: Preprint
Published: 2025
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author Yu, Shenghua
Lu, Youjun
Jeffery, C. Simon
Han, Zhanwen
Liu, DongDong
Yang, Jie
Fan, Xilong
Peng, Bo
Li, Jianbin
author_facet Yu, Shenghua
Lu, Youjun
Jeffery, C. Simon
Han, Zhanwen
Liu, DongDong
Yang, Jie
Fan, Xilong
Peng, Bo
Li, Jianbin
contents In sufficiently compact neutron star-white dwarf (NSWD) binary systems, orbital decay means the white dwarf eventually fills its shrinking Roche lobe, initiating a phase of mass transfer. The exchange of angular momentum-both internal and external-plays a critical role in determining the binary's evolutionary outcome. For neutron stars with relatively low magnetic fields and spin frequencies, whether the orbital separation continues to shrink depends on the interplay between gravitational wave (GW) radiation and mass transfer dynamics. We compute the orbital evolution of NSWD binaries across a broad parameter space, incorporating four key variables. Our results reveal distinct boundaries in the NS-WD mass-mass diagram: binaries with white dwarf masses above these thresholds undergo rapid orbital decay and direct coalescence. The dependence of these boundaries on system parameters indicates that Roche-lobe-filling NSWD binaries can follow multiple evolutionary pathways -- a phenomenon we refer to as branched or polymorphic evolution. NSWD binary systems emit strong and diverse GW signals, many of which would be detectable by space-based GW observatories. The morphology of the evolving GW waveform provides a direct diagnostic for the NSWD binary configuration, including any contribution from an accretion disk. Our models can provide critical waveform templates for identifying merging binary signals in real-time GW data.
format Preprint
id arxiv_https___arxiv_org_abs_2511_20970
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The diverse morphology of gravitational wave signals from merging neutron-star white-dwarf binaries
Yu, Shenghua
Lu, Youjun
Jeffery, C. Simon
Han, Zhanwen
Liu, DongDong
Yang, Jie
Fan, Xilong
Peng, Bo
Li, Jianbin
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
General Relativity and Quantum Cosmology
In sufficiently compact neutron star-white dwarf (NSWD) binary systems, orbital decay means the white dwarf eventually fills its shrinking Roche lobe, initiating a phase of mass transfer. The exchange of angular momentum-both internal and external-plays a critical role in determining the binary's evolutionary outcome. For neutron stars with relatively low magnetic fields and spin frequencies, whether the orbital separation continues to shrink depends on the interplay between gravitational wave (GW) radiation and mass transfer dynamics. We compute the orbital evolution of NSWD binaries across a broad parameter space, incorporating four key variables. Our results reveal distinct boundaries in the NS-WD mass-mass diagram: binaries with white dwarf masses above these thresholds undergo rapid orbital decay and direct coalescence. The dependence of these boundaries on system parameters indicates that Roche-lobe-filling NSWD binaries can follow multiple evolutionary pathways -- a phenomenon we refer to as branched or polymorphic evolution. NSWD binary systems emit strong and diverse GW signals, many of which would be detectable by space-based GW observatories. The morphology of the evolving GW waveform provides a direct diagnostic for the NSWD binary configuration, including any contribution from an accretion disk. Our models can provide critical waveform templates for identifying merging binary signals in real-time GW data.
title The diverse morphology of gravitational wave signals from merging neutron-star white-dwarf binaries
topic High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2511.20970