Experimental studies of the collisions of heavy nuclei at relativistic energies have established the properties of the quark–gluon plasma (QGP), a state of hot, dense nuclear matter in which quarks and gluons are not bound into hadrons1,2,3,4. In this state, matter behaves as a nearly inviscid fluid5 that efficiently translates initial spatial anisotropies into correlated momentum anisotropies among the particles produced, creating a common velocity field pattern known as collective flow. In recent years, comparable momentum anisotropies have been measured in small-system proton–proton (p+p) and proton–nucleus (p+A) collisions, despite expectations that the volume and lifetime of the medium produced would be too small to form a QGP. Here we...
In collisions of ultra-relativistic heavy nuclei, the matter undergoes a phase transition into a dec...
A critical discussion of the present status of the CERN experiments on charm dynamics and hadron col...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
International audienceExperimental studies of the collisions of heavy nuclei at relativistic energie...
The journal Nature recently published a letter titled "Creating small circular, elliptical, and tria...
Collective flow has historically been an indicator that nuclear matter created in heavy ion collisio...
Heavy ion collisions are used to study fundamental features of quantum chromodynamics (QCD) matter v...
The Quark Gluon Plasma (QGP), a hot and dense state of matter in which quarks are not confined insid...
International audienceRelativistic heavy ion collisions produce nuclei-sized droplets of quark-gluon...
In relativistic heavy-ion collisions a dense and hot medium is created. It is thought to be the quar...
Above temperatures of 150 MeV, nuclear matter transitions into the quark-gluon plasma (QGP): a phase...
Heavy quarks (charm and beauty) are produced in abundance during the early stage of ultra-relativist...
Anisotropic flow provides valuable information on the key properties and the evolution of the Quark ...
A strongly interacting Quark Gluon Plasma (QGP) is created in relativistic heavy ion collisions at t...
The Relativistic Heavy Ion Collider (RHIC) was built to re-create and study in the laboratory the ex...
In collisions of ultra-relativistic heavy nuclei, the matter undergoes a phase transition into a dec...
A critical discussion of the present status of the CERN experiments on charm dynamics and hadron col...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
International audienceExperimental studies of the collisions of heavy nuclei at relativistic energie...
The journal Nature recently published a letter titled "Creating small circular, elliptical, and tria...
Collective flow has historically been an indicator that nuclear matter created in heavy ion collisio...
Heavy ion collisions are used to study fundamental features of quantum chromodynamics (QCD) matter v...
The Quark Gluon Plasma (QGP), a hot and dense state of matter in which quarks are not confined insid...
International audienceRelativistic heavy ion collisions produce nuclei-sized droplets of quark-gluon...
In relativistic heavy-ion collisions a dense and hot medium is created. It is thought to be the quar...
Above temperatures of 150 MeV, nuclear matter transitions into the quark-gluon plasma (QGP): a phase...
Heavy quarks (charm and beauty) are produced in abundance during the early stage of ultra-relativist...
Anisotropic flow provides valuable information on the key properties and the evolution of the Quark ...
A strongly interacting Quark Gluon Plasma (QGP) is created in relativistic heavy ion collisions at t...
The Relativistic Heavy Ion Collider (RHIC) was built to re-create and study in the laboratory the ex...
In collisions of ultra-relativistic heavy nuclei, the matter undergoes a phase transition into a dec...
A critical discussion of the present status of the CERN experiments on charm dynamics and hadron col...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...