Resonant Shattering Flares as Multimessenger Probes of the Nuclear Symmetry Energy
arXiv:2012.10322 · doi:10.1093/mnras/stab764
Abstract
The behaviour of the nuclear symmetry energy near saturation density is important for our understanding of dense nuclear matter. This density dependence can be parameterised by the nuclear symmetry energy and its derivatives evaluated at nuclear saturation density. In this work we show that the core-crust interface mode of a neutron star is sensitive to these parameters, through the (density-weighted) shear-speed within the crust, which is in turn dependent on the symmetry energy profile of dense matter. We calculate the frequency at which the neutron star quadrupole () crust-core interface mode must be driven by the tidal field of its binary partner to trigger a Resonant Shattering Flare (RSF). We demonstrate that coincident multimessenger timing of an RSF and gravitational wave chirp from a neutron star merger would enable us to place constraints on the symmetry energy parameters that are competitive with those from current nuclear experiments.
15 pages, 19 figures, accepted in MNRAS
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Cited by in corpus (20)
- Astrophysical Constraints on the Symmetry Energy and the Neutron Skin of Pb with Minimal Modeling Assumptions
- Dense Nuclear Matter Equation of State from Heavy-Ion Collisions
- The case for a minute-long merger-driven gamma-ray burst from fast-cooling synchrotron emission
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- Prior probability distributions of neutron star crust models
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- Quasi-periodic oscillations in precursor flares via seismic aftershocks from resonant shattering
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- Magnetar QPOs and neutron star crust elasticity
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- Problematic systematics in neutron-star merger simulations
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- Nonlinear Alfvén-wave Dynamics and Premerger Emission from Crustal Oscillations in Neutron Star Mergers
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- Modeling Solids in Nuclear Astrophysics with Smoothed Particle Hydrodynamics
- Properties of the Object HESS J1731-347 as a Twin Compact Star
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