Effective Field Theory out of Equilibrium: Brownian quantum fields
D. Boyanovsky

TL;DR
This paper develops a non-equilibrium effective field theory for a light quantum field interacting with heavy fields in a thermal bath, deriving Langevin, master, and kinetic equations that describe dissipative and thermalization effects.
Contribution
It introduces a comprehensive framework unifying effective action, Langevin dynamics, and quantum master equations for out-of-equilibrium quantum fields interacting with a thermal environment.
Findings
Derivation of a Langevin equation with fluctuation-dissipation relation.
Identification of temperature-dependent thresholds affecting renormalization.
Confirmation of thermalization of the light field via quantum kinetics.
Abstract
The emergence of an effective field theory out of equilibrium is studied in the case in which a light field --the system-- interacts with very heavy fields in a finite temperature bath. We obtain the reduced density matrix for the light field, its time evolution is determined by an effective action that includes the \emph{influence action} from correlations of the heavy degrees of freedom. The non-equilibrium effective field theory yields a Langevin equation of motion for the light field in terms of dissipative and noise kernels that obey a generalized fluctuation dissipation relation. These are completely determined by the spectral density of the bath which is analyzed in detail for several cases. At we elucidate the effect of thresholds in the renormalization aspects and the asymptotic emergence of a local effective field theory with unitary time evolution. At new…
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