Heat capacity and quantum compressibility of dynamical spacetimes with thermal particle creation
Jen-Tsung Hsiang, Yu-Cun Xie, and Bei-Lok Hu

TL;DR
This paper investigates the quantum thermodynamics of dynamical spacetimes with thermal particle creation, focusing on heat capacity and quantum compressibility in an inflationary universe model using a conformal scalar field.
Contribution
It extends previous work by analyzing quantum thermodynamic properties of dynamical spacetimes with thermal particle creation using an analytically solvable model.
Findings
Calculated energy density of created particles.
Derived partition function and free energy.
Determined heat capacity and quantum compressibility.
Abstract
This work continues the investigation in two recent papers on the quantum thermodynamics of spacetimes, 1) placing what was studied in [1] for thermal quantum fields in the context of early universe cosmology, and 2) extending the considerations of vacuum compressibility of dynamical spaces treated in [2] to dynamical spacetimes with thermal quantum fields. We begin with a warning that thermal equilibrium condition is not guaranteed to exist or maintained in a dynamical setting and thus finite temperature quantum field theory in cosmological spacetimes needs more careful considerations than what is often described in textbooks. A full description requires nonequilibrium quantum field theory in dynamical spacetimes using `in-in' techniques. A more manageable subclass of dynamics is where thermal equilibrium conditions are established at both the beginning and the end of evolution are…
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Taxonomy
TopicsQuantum Electrodynamics and Casimir Effect · Cosmology and Gravitation Theories · Black Holes and Theoretical Physics
