Determining the phase structure of Quantum Chromodynamics (QCD) and its Equation of State (EOS) at densities and temperatures realized inside neutron stars and their mergers is a long-standing open problem. The holographic V-QCD framework provides a model for the EOS of dense and hot QCD, which describes the deconfinement phase transition between a dense baryonic and a quark matter phase. We use this model in fully general relativistic hydrodynamic (GRHD) simulations to study the formation of quark matter and the emitted gravitational wave signal of binary systems that are similar to the first ever observed neutron star merger event GW170817
The fundamental constituent of matter at high temperature and density has intrigued physicists for q...
We investigate the quark deconfinement phase transition in the context of binary neutron star (BNS) ...
As neutron stars merge they can approach very high nuclear density. Here, we summarized recent resul...
Determining the phase structure of Quantum Chromodynamics (QCD) and its Equation of State (EOS) at d...
We use the holographic V-QCD models to analyse the physics of dense QCD and neutron stars. Accommoda...
Gravitational waves, electromagnetic radiation, and the emission of high energy particles probe the ...
The gauge/gravity duality, combined with information from lattice QCD, nuclear theory, and perturbat...
We present a novel framework for the equation of state of dense and hot Quantum Chromodynamics (QCD)...
Solving the properties of dense QCD matter is an extremely challenging problem because standard theo...
The long-awaited detection of a gravitational wave from the merger of a binary neutron star in Augus...
I review holographic models for (dense and cold) nuclear matter, neutron stars, and their mergers. I...
We present simulations of binary neutron star mergers with equations of state (EoSs) that have input...
International audienceWe study the possible occurrence of the hadron-quark phase transition (PT) dur...
The holographic models for dense QCD matter work surprisingly well. A general implication seems that...
We study in detail the nuclear aspects of a neutron-star merger in which deconfinement to quark matt...
The fundamental constituent of matter at high temperature and density has intrigued physicists for q...
We investigate the quark deconfinement phase transition in the context of binary neutron star (BNS) ...
As neutron stars merge they can approach very high nuclear density. Here, we summarized recent resul...
Determining the phase structure of Quantum Chromodynamics (QCD) and its Equation of State (EOS) at d...
We use the holographic V-QCD models to analyse the physics of dense QCD and neutron stars. Accommoda...
Gravitational waves, electromagnetic radiation, and the emission of high energy particles probe the ...
The gauge/gravity duality, combined with information from lattice QCD, nuclear theory, and perturbat...
We present a novel framework for the equation of state of dense and hot Quantum Chromodynamics (QCD)...
Solving the properties of dense QCD matter is an extremely challenging problem because standard theo...
The long-awaited detection of a gravitational wave from the merger of a binary neutron star in Augus...
I review holographic models for (dense and cold) nuclear matter, neutron stars, and their mergers. I...
We present simulations of binary neutron star mergers with equations of state (EoSs) that have input...
International audienceWe study the possible occurrence of the hadron-quark phase transition (PT) dur...
The holographic models for dense QCD matter work surprisingly well. A general implication seems that...
We study in detail the nuclear aspects of a neutron-star merger in which deconfinement to quark matt...
The fundamental constituent of matter at high temperature and density has intrigued physicists for q...
We investigate the quark deconfinement phase transition in the context of binary neutron star (BNS) ...
As neutron stars merge they can approach very high nuclear density. Here, we summarized recent resul...