arXiv · 2401.06849
Gravitational-wave imprints of non-convex dynamics in binary neutron star mergers
Abstract
Explaining gravitational-wave (GW) observations of binary neutron star (BNS) mergers requires an understanding of matter beyond nuclear saturation density. Our current knowledge of the properties of high-density matter relies on electromagnetic and GW observations, nuclear physics experiments, and general relativistic numerical simulations. In this paper we perform numerical-relativity simulations of BNS mergers subject to non-convex dynamics, allowing for the appearance of expansive shock waves and compressive rarefactions. Using a phenomenological non-convex equation of state we identify observable imprints on the GW spectra of the remnant. In particular, we find that non-convexity induces a significant shift in the quasi-universal relation between the peak frequency of the dominant mode and the tidal deformability (of order $\Delta f_{\rm peak}\gtrsim 380\,\rm Hz$) with respect to that of binaries with convex (regular) dynamics. Similar shifts have been reported in the literature, attributed however to first-order phase transitions from nuclear/hadronic matter to deconfined quark matter. We argue that the ultimate origin of the frequency shifts is to be found in the presence of anomalous, non-convex dynamics in the binary remnant.
Explore related subjects
Keep this discovery
Giuseppe Rivieccio, Davide Guerra, Milton Ruiz, José A. Font. 2024-01-12. Gravitational-wave imprints of non-convex dynamics in binary neutron star mergers. https://doi.org/10.1103/physrevd.109.064032
Cite the original work for its findings. Save a collection to share your selection of sources.