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Open AccessJournal ArticleDOI

Quark deconfinement as supernova explosion engine for massive blue-supergiant stars

TLDR
In this paper, the authors exploit the largely uncertain state of matter at high density, and connect the modeling of such stellar explosions with a first-order phase transition from nuclear matter to the quark-gluon plasma.
Abstract
Blue-supergiant stars develop into core-collapse supernovae --- one of the most energetic outbursts in the universe --- when all nuclear burning fuel is exhausted in the stellar core. Previous attempts failed to explain observed explosions of such stars which have a zero-age main sequence mass of 50~M$_\odot$ or more. Here we exploit the largely uncertain state of matter at high density, and connect the modeling of such stellar explosions with a first-order phase transition from nuclear matter to the quark-gluon plasma. The resulting energetic supernova explosions can account for a large variety of lightcurves, from peculiar type II to super-luminous events. The remnants are neutron stars with quark matter core, known as hybrid stars, of about 2~M$_\odot$ at birth. A galactic event of this kind could be observable due to the release of a second neutrino burst. Its observation would confirm such a first-order phase transition at densities relevant for astrophysics.

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Journal ArticleDOI

Origin of the heaviest elements: The rapid neutron-capture process

TL;DR: In this article, the authors provide an answer to the question "How Were the Elements from Iron to Uranium Made?" (Abridged) by combining new results and important breakthroughs in the related nuclear, atomic and astronomical fields of science.
Journal ArticleDOI

Identifying a First-Order Phase Transition in Neutron-Star Mergers through Gravitational Waves.

TL;DR: It is shown that the dominant postmerger GW frequency f_{peak} may exhibit a significant deviation from an empirical relation between f_{ peak} and the tidal deformability if a strong first-order phase transition leads to the formation of a gravitationally stable extended quark matter core in the postmergers remnant.
Journal ArticleDOI

Signatures of Quark-Hadron Phase Transitions in General-Relativistic Neutron-Star Mergers.

TL;DR: This work presents the first fully general-relativistic simulations of merging neutron-stars including quarks at finite temperatures that can be switched off consistently in the equation of state and shows that the phase transition leads to a very hot and dense quark core that, when it collapses to a black hole, produces a ringdown signal different from the hadronic one.
Journal ArticleDOI

The overarching framework of core-collapse supernova explosions as revealed by 3D fornax simulations

TL;DR: In this article, the authors conducted 19 state-of-the-art 3D core-collapse supernova simulations spanning a broad range of progenitor masses and found that while the majority of these models explode, not all do, and that even models in the middle of the available proggenitor mass range may be less explodable.
Journal ArticleDOI

Nonparametric inference of the neutron star equation of state from gravitational wave observations

TL;DR: In this article, a nonparametric method for inferring the universal neutron star (NS) equation of state (EOS) from gravitational wave (GW) observations was developed.
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