Impact of quark deconfinement in neutron star mergers and hybrid star mergers
arXiv:2006.16183 · doi:10.1140/epjst/e2020-000138-7
Abstract
We describe an unambiguous gravitational-wave signature to identify the occurrence of a strong phase transition from hadronic matter to deconfined quark matter in neutron star mergers. Such a phase transition leads to a strong softening of the equation of state and hence to more compact merger remnants compared to purely hadronic models. If a phase transition takes place during merging, this results in a characteristic increase of the dominant postmerger gravitational-wave frequency relative to the tidal deformability characterizing the inspiral phase. By comparing results from different purely hadronic and hybrid models we show that a strong phase transition can be identified from a single, simultaneous measurement of pre- and postmerger gravitational waves. Furthermore, we present new results for hybrid star mergers, which contain quark matter already during the inspiral stage. Also for these systems we find that the postmerger GW frequency is increased compared to purely hadronic models. We thus conclude that also hybrid star mergers with an onset of the hadron-quark phase transition at relatively low densities may lead to the very same characteristic signature of quark deconfinement in the postmerger GW signal as systems undergoing the phase transition during merging.
11 pages, 5 figures, submitted to EPJ Special Topic: Strong Correlations in Dense Matter Physics
References in corpus (12)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- A Massive Pulsar in a Compact Relativistic Binary
- Tidal Love numbers of neutron stars
- Neutron-star radius constraints from GW170817 and future detections
- Testing Approximations of Thermal Effects in Neutron Star Merger Simulations
- Equation of state constraints from the threshold binary mass for prompt collapse of neutron star mergers
- Inferring the post-merger gravitational wave emission from binary neutron star coalescences
- Exploring the sensitivity of gravitational wave detectors to neutron star physics
- Constraining the onset density of the hadron-quark phase transition with gravitational-wave observations
- Studying strong phase transitions in neutron stars with gravitational waves
- Was GW170817 a canonical neutron star merger? Bayesian analysis with a third family of compact stars
- Phase transitions in neutron stars and their links to gravitational waves
Cited by in corpus (18)
- Systematics of prompt black-hole formation in neutron star mergers
- Frequency deviations in universal relations of isolated neutron stars and postmerger remnants
- Analytic models of the spectral properties of gravitational waves from neutron star merger remnants
- Holographic approach to compact stars and their binary mergers
- Studying the onset of deconfinement with multi-messenger astronomy of neutron stars
- Exploring thermal effects of the hadron-quark matter transition in neutron star mergers
- Gravitational-Wave and X-ray Probes of the Neutron Star Equation of State
- Detectability of QCD phase transitions in binary neutron star mergers: Bayesian inference with the next generation gravitational wave detectors
- Thermal behavior as indicator for hyperons in binary neutron star merger remnants
- Effect of color superconductivity on the mass of hybrid neutron stars in an effective model with pQCD asymptotics
- Reverse phase transitions in binary neutron-star systems with exotic-matter cores
- Signatures of quark deconfinement through the r-modes of twin stars
- Effects of Onset of Phase Transition on Binary Neutron Star Mergers
- Exploring pathways to forming twin 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
- Signatures of deconfined quark phases in binary neutron star mergers
- Probing neutron stars with the full pre-merger and post-merger gravitational wave signal from binary coalescences