Confronting gravitational-wave observations with modern nuclear physics constraints
arXiv:1901.09874 · doi:10.1140/epja/i2019-12774-6
Abstract
Multi-messenger observations of neutron star (NS) mergers have the potential to revolutionize nuclear astrophysics. They will improve our understanding of nucleosynthesis, provide insights about the equation of state (EOS) of strongly-interacting matter at high densities, and enable tests of the theory of gravity and of dark matter. Here, we focus on the EOS, where both gravitational waves (GWs) from neutron-star mergers and X-ray observations from space-based detectors such as NICER will provide more stringent constraints on the structure of neutron stars. Furthermore, recent advances in nuclear theory have enabled reliable calculations of the EOS at low densities using effective field theory based Hamiltonians and advanced techniques to solve the quantum many-body problem. In this paper, we address how the first observation of GWs from GW170817 can be combined with modern calculations of the EOS to extract useful insights about the EOS of matter encountered inside neutron stars. We analyze the impact of various uncertainties, the role of phase transitions in the NS core, and discuss how future observations will improve our understanding of dense matter.
18 pages, 10 figures, published version; Invited contribution prepared for the EPJ A Topical Issue "First joint gravitational wave and electromagnetic observations: Implications for nuclear and particle physics."
References in corpus (25)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- 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
- Chiral effective field theory and nuclear forces
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- INTEGRAL Detection of the First Prompt Gamma-Ray Signal Coincident with the Gravitational Wave Event GW170817
- Light Curves of the Neutron Star Merger GW170817/SSS17a: Implications for R-Process Nucleosynthesis
- 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
- Cold Quark Matter
- Modeling GW170817 based on numerical relativity and its implications
- Improved chiral nucleon-nucleon potential up to next-to-next-to-next-to-leading order
- The Equation of State of a Low-Temperature Fermi Gas with Tunable Interactions
- Hyperon Puzzle: Hints from Quantum Monte Carlo Calculations
- Local chiral effective field theory interactions and quantum Monte Carlo applications
- Spectral Representations of Neutron-Star Equations of State
- Neutron matter from chiral two- and three-nucleon calculations up to NLO
- Correlated density-dependent chiral forces for infinite matter calculations within the Green's function approach
- Polarization Measurements and the Pairing Gap in the Universal Regime
- Spectrum of shear modes in the neutron-star crust: Estimating the nuclear-physics uncertainties
- Analyzing the Fierz Rearrangement Freedom for Local Chiral Two-Nucleon Potentials