Probing millisecond magnetar formation in binary neutron star mergers through X-ray follow-up of gravitational wave alerts
arXiv:2601.04990 · doi:10.1051/0004-6361/202658890
Abstract
The nature of the remnant of a binary neutron star (BNS) merger is uncertain. Though certainly a black hole (BH) in the cases of the most massive BNSs, X-ray lightcurves from gamma-ray burst (GRB) afterglows suggest a neutron star (NS) as a viable candidate for both the merger remnant as well as the central engine of these transients. When jointly observed with gravitational waves (GWs), X-ray lightcurves from BNS merger events could provide critical constraints on the remnant's nature. We aim to assess the current and future capabilities to detect a NS remnant through X-ray observations following GW detections. To this end, we simulate GW signals from BNS mergers and the subsequent X-ray emission from newborn millisecond magnetars. The GW detectability is modeled for both current and next-generation interferometers, while the X-ray emission is reproduced using a dedicated numerical code that models magnetar spin-down and ejecta dynamics informed by numerical-relativity simulations. In our simulations, 2% - 16% of BNS mergers form millisecond magnetars. Among these, up to 70% could be detectable, amounting to up to 1 millisecond magnetar detection per year with SVOM/MXT-like instruments during the LIGO Virgo KAGRA LIGO India (LVKI) O5 run, with optimal detectability occurring about 2 hours post-merger. For next-generation GW interferometers, this rate could increase by up to three orders of magnitude, with peak detectability 3 to 4 hours post-merger. We also explore how the magnetar's magnetic field strength and observer viewing angle affect detectability and discuss optimized observational strategies. Although more likely with upcoming GW interferometers, detecting the spin-down emission of a millisecond magnetar may already be within reach, warranting sustained theoretical and observational efforts given the profound implications for mergers, GRBs, and NS physics of a single detection.
References in corpus (19)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Multi-messenger Observations of a Binary Neutron Star Merger
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- An Ordinary Short Gamma-Ray Burst with Extraordinary Implications: Fermi-GBM Detection of GRB 170817A
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Swope Supernova Survey 2017a (SSS17a), the Optical Counterpart to a Gravitational Wave Source
- Comprehensive nucleosynthesis analysis for ejecta of compact binary mergers
- The discovery of the electromagnetic counterpart of GW170817: kilonova AT 2017gfo/DLT17ck
- Kilonova from post-merger ejecta as an optical and near-infrared counterpart of GW170817
- AT2017gfo: an anisotropic and three-component kilonova counterpart of GW170817
- Estimating the Contribution of Dynamical Ejecta in the Kilonova Associated with GW170817
- Mass Fall-back and Accretion in the Central Engine of Gamma-Ray Bursts
- A magnetar-powered X-ray transient as the aftermath of a binary neutron-star merger
- Post-merger Mass Ejection of Low-mass Binary Neutron Stars
- The SVOM Mission
- Non-Thermal X-ray Properties of Rotation Powered Pulsars and Their Wind Nebulae
- Asymmetric mass ratios for bright double neutron-star mergers
- GWTC-4.0: An Introduction to Version 4.0 of the Gravitational-Wave Transient Catalog
- Heavy double neutron stars: birth, mid-life and death