Analytically improved and numerical-relativity informed effective-one-body model for coalescing binary neutron stars
Rossella Gamba, Matteo Breschi, Sebastiano Bernuzzi, Alessandro Nagar,, William Cook, Georgios Doulis, Francesco Fabbri, N\'estor Ortiz, Amit Poudel,, Alireza Rashti, Wolfgang Tichy, Maximiliano Ujevic

TL;DR
This paper introduces an enhanced Effective One Body model for binary neutron star gravitational wave signals, incorporating recent theoretical advances and numerical relativity data to improve accuracy near merger.
Contribution
The authors develop a new EOB model with improved tidal, spin, and waveform features, validated against extensive numerical relativity simulations.
Findings
Enhanced agreement with numerical relativity simulations
Improved waveform accuracy near merger
Closed-form frequency domain representation
Abstract
Gravitational wave astronomy pipelines rely on template waveform models for searches and parameter estimation purposes. For coalescing binary neutron stars (BNS), such models need to accurately reproduce numerical relativity (NR) up to merger, in order to provide robust estimate of the stars' equation of state - dependent parameters. In this work we present an improved version of the Effective One Body (EOB) model for gravitational waves from BNS systems. Building upon recent post-Newtonian calculations, we include subleading order tidal terms in the waveform multipoles and EOB metric potentials, as well as add up to 5.5PN terms in the gyro-gravitomagnetic functions entering the spin-orbit sector of the model. In order to further improve the EOB-NR agreement in the last few orbital cycles before merger, we introduce next-to-quasicircular corrections in the waveform --…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Pulsars and Gravitational Waves Research · High-pressure geophysics and materials
