Over the last decade it has been established that a quark-gluon plasma (QGP) is formed in ultrarelativistic A+A collisions at RHIC energies. In recent years, detector upgrades have enabled the detailed study of this hot and dense matter. Important probes, among others, are direct photons and heavy flavor observables. Although the RHIC d+Au program was originally undertaken to study initial state and cold nuclear matter effects, recent measurements at both RHIC (d+Au) and the LHC (p+Pb) have found evidence for collective phenomena in these small systems
When the Relativistic Heavy-Ion Collider (RHIC) begins operations, it will be capable of colliding n...
The main goals of relativistic heavy-ion experiments is to study the properties of QCD matter under ...
Abstract The progress over the 30 years since the first high-energy heavy-ion collisions at the BNL-...
At the Relativistic Heavy-Ion Collider (RHIC) collisions of heavy ions at nucleon-nucleon energies o...
Strongly interacting matter at high densities and temperatures can be created in high-energy collisi...
Quantum chromodynamics (QCD) predicts that hadronic matter at high temperatures and/or high densitie...
Three empirical lines of evidence from RHIC have converged and point to the discovery of a strongly ...
It is accepted that a QGP can be formed in relativistic collisions of heavy nuclei (A+A). Recently l...
The recent results on relativistic heavy-ion collisions are discussed. The most convincing quark-glu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
The recent results on relativistic heavy-ion collisions are discussed. The most convincing quark-glu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
The Relativistic Heavy Ion Collider (RHIC) was built to re-create and study in the laboratory the ex...
When the Relativistic Heavy-Ion Collider (RHIC) begins operations, it will be capable of colliding n...
The main goals of relativistic heavy-ion experiments is to study the properties of QCD matter under ...
Abstract The progress over the 30 years since the first high-energy heavy-ion collisions at the BNL-...
At the Relativistic Heavy-Ion Collider (RHIC) collisions of heavy ions at nucleon-nucleon energies o...
Strongly interacting matter at high densities and temperatures can be created in high-energy collisi...
Quantum chromodynamics (QCD) predicts that hadronic matter at high temperatures and/or high densitie...
Three empirical lines of evidence from RHIC have converged and point to the discovery of a strongly ...
It is accepted that a QGP can be formed in relativistic collisions of heavy nuclei (A+A). Recently l...
The recent results on relativistic heavy-ion collisions are discussed. The most convincing quark-glu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
The recent results on relativistic heavy-ion collisions are discussed. The most convincing quark-glu...
Hadrons carrying heavy quarks, i.e. charm or bottom, are important probes of the hot and dense mediu...
The Relativistic Heavy Ion Collider (RHIC) was built to re-create and study in the laboratory the ex...
When the Relativistic Heavy-Ion Collider (RHIC) begins operations, it will be capable of colliding n...
The main goals of relativistic heavy-ion experiments is to study the properties of QCD matter under ...
Abstract The progress over the 30 years since the first high-energy heavy-ion collisions at the BNL-...