Constraining neutron star tidal Love numbers with gravitational wave detectors
arXiv:0709.1915 · doi:10.1103/PhysRevD.77.021502
Abstract
Ground-based gravitational wave detectors may be able to constrain the nuclear equation of state using the early, low frequency portion of the signal of detected neutron star - neutron star inspirals. In this early adiabatic regime, the influence of a neutron star's internal structure on the phase of the waveform depends only on a single parameter lambda of the star related to its tidal Love number, namely the ratio of the induced quadrupole moment to the perturbing tidal gravitational field. We analyze the information obtainable from gravitational wave frequencies smaller than a cutoff frequency of 400 Hz, where corrections to the internal-structure signal are less than 10 percent. For an inspiral of two non-spinning 1.4 solar mass neutron stars at a distance of 50 Mpc, LIGO II detectors will be able to constrain lambda to lambda < 2.0 10^{37} g cm^2 s^2 with 90% confidence. Fully relativistic stellar models show that the corresponding constraint on radius R for 1.4 solar mass neutron stars would be R < 13.6 km (15.3 km) for a n=0.5 (n=1.0) polytrope.
4 pages, 2 figures, minor corrections
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Cited by in corpus (434)
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- Tidal deformations of compact objects and gravitational wave emission
- Constraints from the GW170817 merger event on the nuclear matter equation of state
- Differentiating between sharp and smoother phase transitions in neutron stars
- Coincidence searches of gravitational waves and short gamma-ray bursts
- Slowly rotating condensate dark stars beyond the mean-field approximation
- Predictions on observing hot holographic quark star with gravitational waves
- Early Warning From Eccentric Compact Binaries: Template Initialization And Sub-dominant Mode Effects
- The thermal index of neutron-star matter in the virial approximation
- Insights into the equation of state of neutron-rich matter since GW170817
- Prospects for distinguishing dynamical tides in inspiralling binary neutron stars with third generation gravitational-wave detectors
- Constraints on the Neutron Star Equation of State from GW170817
- Distinguishing between Black Holes and Neutron Stars within a Population of Weak Tidal Measurements
- Mass-radius relation, moment of inertia, and tidal love numbers of anisotropic neutron stars in f (R,T) gravity
- Uncertainty in predicting the stochastic gravitational wave background from compact binary coalescences
- Rising Tides: Analytic Modeling of Tidal Effects in Binary Neutron Star Mergers
- Impact of Higher-order Tidal Corrections on the Measurement Accuracy of Neutron Star Tidal Deformability
- Cosmology with Love: Measuring the Hubble constant using neutron star universal relations
- Tidal Deformability of Quark Stars with Repulsive Interactions
- Impact and detectability of spin-tidal couplings in neutron star inspirals
- Tidal love number of neutron stars with conformal coupling
- Tracing the Trace Anomaly of Dense Matter inside Neutron Stars
- Toward a Unified Understanding of the Dense Matter Equation of State
- Impact of Anisotropy on Neutron Star Structure and Curvature
- Bayesian inferences on covariant density functionals from multimessenger astrophysical data: Influences of parametrizations of density dependent couplings
- Unified Equation of State for Neutron Stars Based on the Gogny Interaction
- Comparing a Compact-Binary Mass-Shell Model with Select Observed Gravitational Waves
- Inferring neutron-star Love-Q relations from gravitational waves in the hierarchical Bayesian framework
- On the logarithmic Love number of black holes beyond general relativity
- Rotation-dependent -Love-- relations in perturbation theory
- Tidal perturbations of an extreme mass ratio inspiral around a Kerr black hole
- Extremal Love: tidal/electromagnetic deformability, logarithmic running and the weak gravity conjecture
- P-stars in the gravitational wave era
- Resonant Axion-Photon Conversion in the Early Inspiral of Neutron Star Binaries
- Convective stability analysis of massive neutron stars formed in binary mergers