A new quark-hadron hybrid equation of state for astrophysics - I. High-mass twin compact stars
Sanjin Benic, David Blaschke, David E. Alvarez-Castillo, Tobias, Fischer, Stefan Typel

TL;DR
This paper introduces a new hybrid quark-hadron equation of state model for compact stars, predicting high-mass twin stars with distinct radii, which can help probe the QCD phase diagram through astrophysical observations.
Contribution
It develops a novel microscopic hybrid EoS incorporating excluded volume and higher-order quark interactions, enabling the prediction of high-mass twin stars with a strong first-order phase transition.
Findings
Predicts high-mass twin stars around 2 solar masses.
Shows a strong first-order phase transition with large latent heat.
Aligns mass-radius relations with recent astrophysical constraints.
Abstract
Aims: We present a new microscopic hadron-quark hybrid equation of state model for astrophysical applications, from which compact hybrid star configurations are constructed. These are composed of a quark core and a hadronic shell with a first-order phase transition at their interface. The resulting mass-radius relations are in accordance with the latest astrophysical constraints. Methods: The quark matter description is based on a quantum chromodynamics (QCD) motivated chiral approach with higher-order quark interactions in the Dirac scalar and vector coupling channels. For hadronic matter we select a relativistic mean-field equation of state with density-dependent couplings. Since the nucleons are treated in the quasi-particle framework, an excluded volume correction has been included for the nuclear equation of state at suprasaturation density which takes into account the finite size…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Quantum Chromodynamics and Particle Interactions · High-pressure geophysics and materials
