Satz H. QUARK MATTER AND NUCLEAR COLLISIONS: A BRIEF HISTORY OF STRONG INTERACTION THERMODYNAMICS. International Journal of Modern Physics E. 2012;21(08): 1230006.The past 50 years have seen the emergence of a new field of research in physics, the study of matter at extreme temperatures and densities. The theory of strong interactions, quantum chromodynamics (QCD), predicts that in this limit, matter will become a plasma of deconfined quarks and gluons - the medium which made up the early universe in the first 10 microseconds after the Big Bang. High energy nuclear collisions are expected to produce short-lived bubbles of such a medium in the laboratory. I survey the merger of statistical QCD and nuclear collision studies for the analysis o...
The strong force which bind quarks together is described by a relativistic quantum field theory call...
Matter described by quantum chromodynamics (QCD), the theory of strong interactions, may undergo pha...
Heavy-ion collisions at very high colliding energies are expected to produce a quark-gluon plasma (Q...
The thermodynamics of strongly interacting matter has become a profound and challenging area of mode...
Strongly interacting matter as described by the thermodynamics of QCD undergoes a phase transition, ...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
International audienceThe quark–gluon plasma, in which quarks and gluons are deconfined, is a transi...
International audienceThe quark–gluon plasma, in which quarks and gluons are deconfined, is a transi...
High-energy heavy-ion collisions provide a unique opportunity to study the properties of the hot and...
Statistical QCD predicts that with increasing density, strongly interacting matter will undergo a tr...
We review important ideas on nuclear and quark matter description on the basis of high-temperature f...
We review important ideas on nuclear and quark matter description on the basis of high-temperature f...
Heavy-ion collisions at very high colliding energies are expected to produce a quark-gluon plasma (Q...
Exploration of the phase diagram of Quantum Chromodynamics (QCD) matter is an exciting undertaking t...
The strong force which bind quarks together is described by a relativistic quantum field theory call...
Matter described by quantum chromodynamics (QCD), the theory of strong interactions, may undergo pha...
Heavy-ion collisions at very high colliding energies are expected to produce a quark-gluon plasma (Q...
The thermodynamics of strongly interacting matter has become a profound and challenging area of mode...
Strongly interacting matter as described by the thermodynamics of QCD undergoes a phase transition, ...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
Quantum Chromodynamics, the theory of strong interaction, predicts a new phase of matter for extreme...
International audienceThe quark–gluon plasma, in which quarks and gluons are deconfined, is a transi...
International audienceThe quark–gluon plasma, in which quarks and gluons are deconfined, is a transi...
High-energy heavy-ion collisions provide a unique opportunity to study the properties of the hot and...
Statistical QCD predicts that with increasing density, strongly interacting matter will undergo a tr...
We review important ideas on nuclear and quark matter description on the basis of high-temperature f...
We review important ideas on nuclear and quark matter description on the basis of high-temperature f...
Heavy-ion collisions at very high colliding energies are expected to produce a quark-gluon plasma (Q...
Exploration of the phase diagram of Quantum Chromodynamics (QCD) matter is an exciting undertaking t...
The strong force which bind quarks together is described by a relativistic quantum field theory call...
Matter described by quantum chromodynamics (QCD), the theory of strong interactions, may undergo pha...
Heavy-ion collisions at very high colliding energies are expected to produce a quark-gluon plasma (Q...