Parameter estimation for strong phase transitions in supranuclear matter using gravitational-wave astronomy
arXiv:2006.14936 · doi:10.1103/PhysRevResearch.2.033514
Abstract
At supranuclear densities, explored in the core of neutron stars, a strong phase transition from hadronic matter to more exotic forms of matter might be present. To test this hypothesis, binary neutron-star mergers offer a unique possibility to probe matter at densities that we can not create in any existing terrestrial experiment. In this work, we show that, if present, strong phase transitions can have a measurable imprint on the binary neutron-star coalescence and the emitted gravitational-wave signal. We construct a new parameterization of the supranuclear equation of state that allows us to test for the existence of a strong phase transition and extract its characteristic properties purely from the gravitational-wave signal of the inspiraling neutron stars. We test our approach using a Bayesian inference study simulating 600 signals with three different equations of state and find that for current gravitational-wave detector networks already twelve events might be sufficient to verify the presence of a strong phase transition. Finally, we use our methodology to analyze GW170817 and GW190425, but do not find any indication that a strong phase transition is present at densities probed during the inspiral.
17 pages, 11 figures
References in corpus (29)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- Multi-messenger Observations of a Binary Neutron Star Merger
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- Chiral effective field theory and nuclear forces
- Tidal Love numbers of neutron stars
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Robust parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
- Constraints on a phenomenologically parameterized neutron-star equation of state
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- GW170817: Joint Constraint on the Neutron Star Equation of State from Multimessenger Observations
- Neutron-star radius constraints from GW170817 and future detections
- Modeling GW170817 based on numerical relativity and its implications
- Improved chiral nucleon-nucleon potential up to next-to-next-to-next-to-leading order
- Post-1-Newtonian tidal effects in the gravitational waveform from binary inspirals
- Quark matter in compact stars?
- A new quark-hadron hybrid equation of state for astrophysics - I. High-mass twin compact stars
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Compact stars with sequential QCD phase transitions
- Neutron-star Radius from a Population of Binary Neutron Star Mergers
- Inferring the post-merger gravitational wave emission from binary neutron star coalescences
- Studying strong phase transitions in neutron stars with gravitational waves
- On the possibility of GW190425 being a black hole--neutron star binary merger
- Is GW190425 consistent with being a neutron starblack hole merger?
- Spectrum of shear modes in the neutron-star crust: Estimating the nuclear-physics uncertainties