The initial spectrum of fluctuations in the little bang
Kevin Dusling, Francois Gelis, Raju Venugopalan

TL;DR
This paper develops a quantum fluctuation spectrum in classical background fields for ultra-relativistic nuclear collisions, enabling improved predictions of early-time observables and potential insights into hydrodynamic behavior and jet quenching.
Contribution
It derives the spectrum of quantum fluctuations in classical background fields in QCD, allowing all-order calculations of early-time heavy ion collision phenomena.
Findings
Spectrum of quantum fluctuations computed in QCD background
All-order leading logs and secular terms included in the formalism
Numerical analysis in scalar theory suggests early hydrodynamic flow
Abstract
High parton densities in ultra-relativistic nuclear collisions suggest a description of these collisions wherein the high energy nuclear wavefunctions and the initial stages of the nuclear collision are dominated by classical fields. This underlying paradigm can be significantly improved by including quantum fluctuations around the classical background fields. One class of these contributes to the energy evolution of multi-parton correlators in the nuclear wavefunctions. Another dominant class of unstable quantum fluctuations grow rapidly with proper time after the collision. These secular terms appear at each loop order; the leading contributions can be resummed to all loop orders to obtain expressions for final state observables. The all-order result can be expressed in terms of the spectrum of fluctuations on the initial proper time surface. We compute, in gauge,…
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