Finite temperature energy-momentum tensor in compactified cosmic string spacetime
W. Oliveira dos Santos, E. R. Bezerra de Mello

TL;DR
This paper studies the finite temperature effects on the energy-momentum tensor and field squared for a charged scalar field in a high-dimensional, compactified cosmic string spacetime, considering magnetic fluxes and chemical potential.
Contribution
It provides explicit calculations of thermal corrections to quantum field observables in a complex cosmic string background with compactification and magnetic fluxes, including low and high temperature limits.
Findings
Thermal corrections increase the induced densities.
Expectations are even periodic functions of magnetic flux and chemical potential.
Behavior of observables analyzed in low and high temperature regimes.
Abstract
In this paper we analyze the expectation value of the field squared and the energy-momentum tensor associated with a massive charged scalar quantum field with a nonzero chemical potential propagating in a high-dimensional compactified cosmic string spacetime in thermal equilibrium at finite temperature . Moreover, we assume that the charged quantum field interacts with a very thin magnetic flux running along the core of the idealized cosmic string, and with a magnetic flux enclosed by the compact dimension. These observables are expressed as the vacuum expectation values and the finite temperature contributions coming from the particles and antiparticles excitations. Due to the compactification, the thermal corrections can be decomposed in a part induced by the cosmic string spacetime without compactification, plus a contribution induced by the compactification. This decompositions…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Quantum Electrodynamics and Casimir Effect
