General form of the renormalized, perturbed energy density via interacting quantum fields in cosmological spacetimes
Mahmoud Parvizi

TL;DR
This paper develops a covariant algebraic quantum field theory approach to compute the perturbed energy density in the early universe, accounting for far-from-equilibrium interactions in a non-stationary spacetime.
Contribution
It introduces a novel algebraic formalism to derive the renormalized energy density considering interactions and non-stationary backgrounds in early universe cosmology.
Findings
Derived an expression for the perturbed energy density in curved spacetime.
Extended algebraic quantum field theory to include far-from-equilibrium interactions.
Provided a framework for more accurate cosmological observable calculations.
Abstract
A covariant description of quantum matter fields in the early universe underpins models for the origin of species, e.g. baryogenesis and dark matter production. In nearly all cases the relevant cosmological observables are computed in a general approximation, via the standard irreducible representations found in the operator formalism of particle physics, where intricacies related to a renormalized stress-energy tensor in a non-stationary spacetime are ignored. Models of the early universe also include a dense environment of quantum fields where far-from-equilibrium interactions manifest expressions for observables with substantive corrections to the leading terms. An alternate treatment of these cosmological observables may be carried out within the framework of algebraic quantum field theory in curved spacetime, where the field theoretic model of quantum matter is compatible with the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Quantum Electrodynamics and Casimir Effect · Black Holes and Theoretical Physics
