arXiv · hep-ph/0511354
Quantum black holes and thermalization in relativistic heavy ion collisions
Abstract
A new thermalization scenario for heavy ion collisions is discussed. It is based on the Hawking--Unruh effect: an observer moving with an acceleration $a$ experiences the influence of a thermal bath with an effective temperature $T = a / 2π$, similar to the one present in the vicinity of a black hole horizon. In the case of heavy ion collisions, the acceleration is caused by a pulse of chromo--electric field $E \sim Q_s^2/g$ ($Q_s$ is the saturation scale, and $g$ is the strong coupling), the typical acceleration is $a \sim Q_s$, and the heat bath temperature is $T \simeq Q_s / 2π\sim 200$ MeV. In nuclear collisions at sufficiently high energies the effect can induce a rapid thermalization over the time period of $τ\sim π/Q_s $ accompanied by phase transitions. A specific example of chiral symmetry restoration induced by the chromo--electric field is considered; it is mathematically analogous to the phase transition occurring in the vicinity of a black hole.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
D. Kharzeev. 2005-11-30. Quantum black holes and thermalization in relativistic heavy ion collisions. https://doi.org/10.1016/j.nuclphysa.2006.06.051
Cite the original work for its findings. Save a collection to share your selection of sources.