Impact of pions on binary neutron star mergers
Vimal Vijayan, Ninoy Rahman, Andreas Bauswein, Gabriel, Mart\'inez-Pinedo, Ignacio L. Arbina

TL;DR
This study investigates how pions influence neutron star merger dynamics and gravitational-wave signals, showing that pions soften the equation of state, affect merger outcomes, and slightly increase ejecta mass, with implications for gravitational-wave astronomy.
Contribution
It introduces a model incorporating pions into neutron star equations of state and assesses their impact on merger observables through simulations, which was not previously explored.
Findings
Pions lower neutron star maximum mass and radius.
Pions cause a shift of up to 150 Hz in postmerger gravitational-wave frequency.
Pions increase ejecta mass by a few tens of percent.
Abstract
We study the impact of pions in simulations of neutron star mergers and explore the impact on gravitational-wave observables. We model charged and neutral pions as a non-interacting Boson gas with a chosen, constant effective mass. We add the contributions of pions, which can occur as a condensate or as a thermal population, to existing temperature and composition dependent equations of state. Compared to the models without pions, the presence of a pion condensate decreases the characteristic properties of cold, non-rotating neutron stars such as the maximum mass, the radius and the tidal deformability. We conduct relativistic hydrodynamical simulations of neutron star mergers for these modified equations of state models and compare to the original models, which ignore pions. Generally, the inclusion of pions leads to a softening of the equation of state, which is more pronounced for…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Superconducting Materials and Applications · High-Energy Particle Collisions Research
