Studying strong phase transitions in neutron stars with gravitational waves
arXiv:1911.07091 · doi:10.1103/PhysRevD.101.044019
Abstract
The composition of neutron stars at the extreme densities reached in their cores is currently unknown. Besides nuclear matter of normal neutrons and protons, the cores of neutron stars might harbor exotic matter such as deconfined quarks. In this paper we study strong hadron-quark phase transitions in the context of gravitational wave observations of inspiraling neutron stars. We consider upcoming detections of neutron star coalescences and model the neutron star equations of state with phase transitions through the Constant-Speed-of-Sound parametrization. We use the fact that neutron star binaries with one or more hadron-quark hybrid stars can exhibit qualitatively different tidal properties than binaries with hadronic stars of the same mass, and hierarchically model the masses and tidal properties of simulated populations of binary neutron star inspiral signals. We explore the parameter space of phase transitions and discuss under which conditions future observations of binary neutron star inspirals can identify this effect and constrain its properties, in particular the threshold density at which the transition happens and the strength of the transition. We find that if the detected population of binary neutron stars contains both hadronic and hybrid stars, the onset mass and strength of a sufficiently strong phase transition can be constrained with 50-100 detections. If the detected neutron stars are exclusively hadronic or hybrid, then it is possible to place lower or upper limits on the transition density and strength.
21 pages, 13 figures, 3 tables; accepted for publication in PRD, discussion on softer quark matter added, typos corrected
References in corpus (19)
- 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
- Advanced LIGO
- 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
- Formation of Double Neutron Star Systems
- Constraints on neutron star radii based on chiral effective field theory interactions
- Models of Pulsar Glitches
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Inferring the eccentricity distribution
- Compact stars with sequential QCD phase transitions
- Phenomenological QCD equation of state for massive neutron stars
- Effective-one-body multipolar waveform for tidally interacting binary neutron stars up to merger
- Phase transitions in dense matter and the maximum mass of neutron stars
- Quasi-5.5PN TaylorF2 approximant for compact binaries: point-mass phasing and impact on the tidal polarizability inference
- Proton and neutron density distributions at supranormal density in low- and medium-energy heavy-ion collisions
Cited by in corpus (35)
- Impact of the PSR J0740+6620 radius constraint on the properties of high-density matter
- The Science of the Einstein Telescope
- Was GW170817 a canonical neutron star merger? Bayesian analysis with a third family of compact stars
- Emergence of microphysical bulk viscosity in binary neutron star post-merger dynamics
- The slope, the hill, the drop, and the swoosh: Learning about the nuclear matter equation of state from the binary Love relations
- Phase Transition Phenomenology with Nonparametric Representations of the Neutron Star Equation of State
- On the minimum radius of very massive neutron stars
- Analytic models of the spectral properties of gravitational waves from neutron star merger remnants
- Implicit correlations within phenomenological parametric models of the neutron star equation of state
- Neutron stars and the dense matter equation of state: from microscopic theory to macroscopic observations
- Inferring the maximum and minimum mass of merging neutron stars with gravitational waves
- Probing hybrid stars with gravitational waves via interfacial modes
- Parameter estimation for strong phase transitions in supranuclear matter using gravitational-wave astronomy
- Exploring thermal effects of the hadron-quark matter transition in neutron star mergers
- Degeneracy in the inference of phase transitions in the neutron star equation of state from gravitational wave data
- Probing elastic quark phases in hybrid stars with radius measurements
- Gravitational waves from accretion-induced descalarization in massive scalar-tensor theory
- Constraining the equation of state of hybrid stars using recent information from multidisciplinary physics
- Detectability of a phase transition in neutron star matter with third-generation gravitational wave interferometers
- Needle in a Bayes Stack: a Hierarchical Bayesian Method for Constraining the Neutron Star Equation of State with an Ensemble of Binary Neutron Star Post-merger Remnants
- Reverse phase transitions in binary neutron-star systems with exotic-matter cores
- Interface modes in inspiralling neutron stars: A gravitational-wave probe of first-order phase transitions
- Impact of the nuclear equation of state on the formation of twin stars
- Properties of First-Order Hadron-Quark Phase Transition from Inverting Neutron Star Observables
- Assessing equation of state-independent relations for neutron stars with nonparametric models
- Average speed of sound in neutron stars
- Nonparametric extensions of nuclear equations of state: probing the breakdown scale of relativistic mean-field theory
- Exploring pathways to forming twin stars
- Simulating neutron stars with a flexible enthalpy-based equation of state parametrization in SpECTRE
- On the Testability of the Quark-Hadron Transition Using Gravitational Waves From Merging Binary Neutron Stars
- Investigating the Impact of Higher-Order Phase Transitions in Binary Neutron-Star Mergers
- Exploring the Potential for Detecting Rotational Instabilities in Binary Neutron Star Merger Remnants with Gravitational Wave Detectors
- Gravitational-wave model for neutron star merger remnants with supervised learning
- Probing neutron stars with the full pre-merger and post-merger gravitational wave signal from binary coalescences
- Differentiating between sharp and smoother phase transitions in neutron stars