Fermionic condensate and the Casimir effect in cosmic string spacetime
A. Kh. Grigoryan, A. R. Mkrtchyan, A. A. Saharian

TL;DR
This paper studies how a cosmic string's topology and boundary conditions affect the fermionic condensate and vacuum energy, revealing decay behaviors and Casimir forces in such a spacetime.
Contribution
It provides a detailed analysis of fermionic vacuum effects in cosmic string spacetime with boundaries, including decay rates and boundary-induced contributions.
Findings
Boundary-induced effects vanish on the string
Fermionic condensate changes sign with distance from the string
Casimir forces are attractive and inhomogeneous
Abstract
We investigate combined effects of nontrivial topology, induced by a cosmic string, and boundaries on the fermionic condensate and the vacuum expectation value (VEV) of the energy-momentum tensor for a massive fermionic field. As geometry of boundaries we consider two plates perpendicular to the string axis on which the field is constrained by the MIT bag boundary condition. By using the Abel-Plana type summation formula, the VEVs in the region between the plates are decomposed into the boundary-free and boundary-induced contributions for general case of the planar angle deficit. The boundary-induced parts in both the fermionic condensate and the energy-momentum tensor vanish on the cosmic string. Fermionic condensate is positive near the string and negative al large distances, whereas the vacuum energy density is negative everywhere. The radial stress is equal to the energy density.…
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