Detecting the Hadron-Quark Phase Transition with Gravitational Waves

The long-awaited detection of a gravitational wave from the merger of a binary neutron star in August 2017 (GW170817) marks the beginning of the new field of multi-messenger gravitational wave astronomy. By exploiting the extracted tidal deformations of the two neutron stars from the late inspiral p...

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Main Authors: Matthias Hanauske, Luke Bovard, Elias Most, Jens Papenfort, Jan Steinheimer, Anton Motornenko, Volodymyr Vovchenko, Veronica Dexheimer, Stefan Schramm, Horst Stöcker
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Universe
Subjects:
Online Access:https://www.mdpi.com/2218-1997/5/6/156
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spelling doaj-629fa716fba5489da306b9e0320d74a52020-11-25T00:16:48ZengMDPI AGUniverse2218-19972019-06-015615610.3390/universe5060156universe5060156Detecting the Hadron-Quark Phase Transition with Gravitational WavesMatthias Hanauske0Luke Bovard1Elias Most2Jens Papenfort3Jan Steinheimer4Anton Motornenko5Volodymyr Vovchenko6Veronica Dexheimer7Stefan Schramm8Horst Stöcker9Institute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyFrankfurt Institute for Advanced Studies, Ruth-Moufang-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyDepartment of Physics, Kent State University, Kent, OH 44243, USAFrankfurt Institute for Advanced Studies, Ruth-Moufang-Straße, 1, 60438 Frankfurt am Main, GermanyInstitute for Theoretical Physics, Goethe University, Max-von-Laue-Straße, 1, 60438 Frankfurt am Main, GermanyThe long-awaited detection of a gravitational wave from the merger of a binary neutron star in August 2017 (GW170817) marks the beginning of the new field of multi-messenger gravitational wave astronomy. By exploiting the extracted tidal deformations of the two neutron stars from the late inspiral phase of GW170817, it is now possible to constrain several global properties of the equation of state of neutron star matter. However, the most interesting part of the high density and temperature regime of the equation of state is solely imprinted in the post-merger gravitational wave emission from the remnant hypermassive/supramassive neutron star. This regime was not observed in GW170817, but will possibly be detected in forthcoming events within the current observing run of the LIGO/VIRGO collaboration. Numerous numerical-relativity simulations of merging neutron star binaries have been performed during the last decades, and the emitted gravitational wave profiles and the interior structure of the generated remnants have been analysed in detail. The consequences of a potential appearance of a hadron-quark phase transition in the interior region of the produced hypermassive neutron star and the evolution of its underlying matter in the phase diagram of quantum cromo dynamics will be in the focus of this article. It will be shown that the different density/temperature regions of the equation of state can be severely constrained by a measurement of the spectral properties of the emitted post-merger gravitational wave signal from a future binary compact star merger event.https://www.mdpi.com/2218-1997/5/6/156equation of statehadron-quark phase transitionbinary neutron star mergergravitational wave
collection DOAJ
language English
format Article
sources DOAJ
author Matthias Hanauske
Luke Bovard
Elias Most
Jens Papenfort
Jan Steinheimer
Anton Motornenko
Volodymyr Vovchenko
Veronica Dexheimer
Stefan Schramm
Horst Stöcker
spellingShingle Matthias Hanauske
Luke Bovard
Elias Most
Jens Papenfort
Jan Steinheimer
Anton Motornenko
Volodymyr Vovchenko
Veronica Dexheimer
Stefan Schramm
Horst Stöcker
Detecting the Hadron-Quark Phase Transition with Gravitational Waves
Universe
equation of state
hadron-quark phase transition
binary neutron star merger
gravitational wave
author_facet Matthias Hanauske
Luke Bovard
Elias Most
Jens Papenfort
Jan Steinheimer
Anton Motornenko
Volodymyr Vovchenko
Veronica Dexheimer
Stefan Schramm
Horst Stöcker
author_sort Matthias Hanauske
title Detecting the Hadron-Quark Phase Transition with Gravitational Waves
title_short Detecting the Hadron-Quark Phase Transition with Gravitational Waves
title_full Detecting the Hadron-Quark Phase Transition with Gravitational Waves
title_fullStr Detecting the Hadron-Quark Phase Transition with Gravitational Waves
title_full_unstemmed Detecting the Hadron-Quark Phase Transition with Gravitational Waves
title_sort detecting the hadron-quark phase transition with gravitational waves
publisher MDPI AG
series Universe
issn 2218-1997
publishDate 2019-06-01
description The long-awaited detection of a gravitational wave from the merger of a binary neutron star in August 2017 (GW170817) marks the beginning of the new field of multi-messenger gravitational wave astronomy. By exploiting the extracted tidal deformations of the two neutron stars from the late inspiral phase of GW170817, it is now possible to constrain several global properties of the equation of state of neutron star matter. However, the most interesting part of the high density and temperature regime of the equation of state is solely imprinted in the post-merger gravitational wave emission from the remnant hypermassive/supramassive neutron star. This regime was not observed in GW170817, but will possibly be detected in forthcoming events within the current observing run of the LIGO/VIRGO collaboration. Numerous numerical-relativity simulations of merging neutron star binaries have been performed during the last decades, and the emitted gravitational wave profiles and the interior structure of the generated remnants have been analysed in detail. The consequences of a potential appearance of a hadron-quark phase transition in the interior region of the produced hypermassive neutron star and the evolution of its underlying matter in the phase diagram of quantum cromo dynamics will be in the focus of this article. It will be shown that the different density/temperature regions of the equation of state can be severely constrained by a measurement of the spectral properties of the emitted post-merger gravitational wave signal from a future binary compact star merger event.
topic equation of state
hadron-quark phase transition
binary neutron star merger
gravitational wave
url https://www.mdpi.com/2218-1997/5/6/156
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