Shape analysis of strongly-interacting systems: the heavy ion case
arXiv:1104.5267 · doi:10.1088/1367-2630/13/6/065006
Abstract
Collisions between nuclei at ultrarelativistic energies produce a color-deconfined plasma that expands explosively and rapidly reverts to the color-confined (hadronic) state. In non-central collisions, the zone of hot matter is transversely anisotropic and may be "tilted" relative to the direction of the incoming beams. As the matter cools and expands into the vacuum, the evolution of the system shape depends sensitively on the dynamical response of the plasma under extreme conditions. Two-pion intensity interferometry performed relative to the impact parameter can be used to measure the approximate final shape of the system, when pions decouple from the system. We use several transport models to illustrate the dependence of the final shape on the QCD equation of state and late-stage hadronic rescattering. The dependence of the final shape on collision energy may reveal non-trivial structures in the QCD phase diagram. Indeed, the few measurements published to date show a tantalizing behaviour in an energy region under intense experimental and theoretical scrutiny, as signatures of a first-order phase transition may appear there. We discuss strong parallels between shape studies in heavy ion collisions and those in two other strongly-coupled systems.
19 pages, 7 figures; Invited article to special focus interdisciplinary issue of New Journal of Physics on Strongly Correlated Quantum Fluids
References in corpus (12)
- PYTHIA 6.4 Physics and Manual
- Fully integrated transport approach to heavy ion reactions with an intermediate hydrodynamic stage
- Space-time evolution of bulk QCD matter
- Directed flow in ultrarelativistic heavy-ion collisions
- On the necessity to include event-by-event fluctuations in experimental evaluation of elliptical flow
- Recent results in relativistic heavy ion collisions: from ``a new state of matter'' to "the perfect fluid"
- (3+1)-Dimensional Hydrodynamic Expansion with a Critical Point from Realistic Initial Conditions
- Effects of a phase transition on HBT correlations in an integrated Boltzmann+Hydrodynamics approach
- excitation function: Freeze-out and equation of state dependence
- Evolution of pion HBT radii from RHIC to LHC -- Predictions from ideal hydrodynamics
- Fitted HBT radii versus space-time variances in flow-dominated models
- Azimuthal dependence of pion source radii in Pb+Au collisions at 158 A GeV