A microscopic, non-equilibrium, statistical field theory for cosmic structure formation
Matthias Bartelmann, Felix Fabis, Daniel Berg, Elena Kozlikin, Robert, Lilow, Celia Viermann

TL;DR
This paper develops a microscopic, non-equilibrium statistical field theory for cosmic structure formation, providing the first fully analytic calculation of the non-linear power spectrum that aligns well with numerical simulations.
Contribution
It introduces a novel microscopic, non-equilibrium field theory approach for cosmic structures, deriving analytic expressions for the non-linear power spectrum and bispectrum.
Findings
Analytic expressions for the non-linear power spectrum and bispectrum.
Reproduction of the non-linear growth of cosmic density fluctuations.
Agreement with numerical simulations across various wave numbers and redshifts.
Abstract
Building upon the recent pioneering work by Mazenko and by Das and Mazenko, we develop a microscopic, non-equilibrium, statistical field theory for initially correlated canonical ensembles of classical microscopic particles obeying Hamiltonian dynamics. Our primary target is cosmic structure formation, where initial Gaussian correlations in phase space are believed to be set by inflation. We give an exact expression for the generating functional of this theory and work out suitable approximations. We specify the initial correlations by a power spectrum and derive general expressions for the correlators of the density and the response field. We derive simple closed expressions for the lowest-order contributions to the non-linear cosmological power spectrum, valid for arbitrary wave numbers. We further calculate the bispectrum expected in this theory within these approximations and the…
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