Heavy-ion experiments provide important data to test astrophysical models. The high-density equation of state can be probed in HI collisions and applied to the hot protoneutron star formed in core collapse supernovae. The parity radius experiment (PREX) aims to accurately measure the neutron radius of 208Pb with parity-violating electron scattering. This determines the pressure of neutron-rich matter and the density dependence of the symmetry energy. Competition between nuclear attraction and Coulomb repulsion can form exotic shapes called nuclear pasta in neutron star crusts and supernovae. This competition can be probed with multifragmentation HI reactions. We use large-scale semiclassical simulations to study nonuniform neutron-rich matt...
Introduction The primary motivation for studying relativistic heavy ion collisions is to gain an un...
International audienceThe nuclear equation of state (EOS) is at the center of numerous theoretical a...
Core collapse supernovae are gigantic explosions of massive stars that radiate 99% of their energy i...
Interpreting high-energy, astrophysical phenomena, such as supernova explosions or neutron-star coll...
At very high densities, electrons react with protons to form neutron rich matter. This material is c...
At very high densities, electrons react with protons to form neutron rich matter. This material is c...
Laboratory experiments with high-energetic heavy-ion collisions offer the opportunity to explore fun...
With contributions by leading theoreticians, this book presents the discoveries of hitherto hidden c...
208Pb with parity violating electron scattering in a way that is free from most strong interaction u...
We discuss the physics of matter that is relevant to the structure of compact stars. This includes n...
The dynamics of the final stages of the coalescence of two neturon stars (such as the binary pulsar ...
Core collapse supernovae are gigantic explosions of massive stars that radiate 99% of their energy i...
As a way to find analogies and differences in the dynamics of hot and dense matter under extreme con...
Neutron-star mergers are closely related to nuclear physics. The nuclear equation of state determine...
Calculations using astrophysical equations of state at low densities comparable to that of the neutr...
Introduction The primary motivation for studying relativistic heavy ion collisions is to gain an un...
International audienceThe nuclear equation of state (EOS) is at the center of numerous theoretical a...
Core collapse supernovae are gigantic explosions of massive stars that radiate 99% of their energy i...
Interpreting high-energy, astrophysical phenomena, such as supernova explosions or neutron-star coll...
At very high densities, electrons react with protons to form neutron rich matter. This material is c...
At very high densities, electrons react with protons to form neutron rich matter. This material is c...
Laboratory experiments with high-energetic heavy-ion collisions offer the opportunity to explore fun...
With contributions by leading theoreticians, this book presents the discoveries of hitherto hidden c...
208Pb with parity violating electron scattering in a way that is free from most strong interaction u...
We discuss the physics of matter that is relevant to the structure of compact stars. This includes n...
The dynamics of the final stages of the coalescence of two neturon stars (such as the binary pulsar ...
Core collapse supernovae are gigantic explosions of massive stars that radiate 99% of their energy i...
As a way to find analogies and differences in the dynamics of hot and dense matter under extreme con...
Neutron-star mergers are closely related to nuclear physics. The nuclear equation of state determine...
Calculations using astrophysical equations of state at low densities comparable to that of the neutr...
Introduction The primary motivation for studying relativistic heavy ion collisions is to gain an un...
International audienceThe nuclear equation of state (EOS) is at the center of numerous theoretical a...
Core collapse supernovae are gigantic explosions of massive stars that radiate 99% of their energy i...