Journal of High Energy Physics, Gravitation and Cosmology

Volume 9, Issue 1 (January 2023)

ISSN Print: 2380-4327   ISSN Online: 2380-4335

Google-based Impact Factor: 1.31  Citations  

Noncommutative-Geometry Wormholes Based on the Casimir Effect

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DOI: 10.4236/jhepgc.2023.91022    68 Downloads   362 Views  Citations

ABSTRACT

While wormholes are as good a prediction of Einstein’s theory as black holes, they are subject to severe restrictions from quantum field theory. In particular, holding a wormhole open requires a violation of the null energy condition, calling for the existence of exotic matter. The Casimir effect has shown that this physical requirement can be met on a small scale, thereby solving a key conceptual problem. The Casimir effect does not, however, guarantee that the small-scale violation is sufficient for supporting a macroscopic wormhole. The purpose of this paper is to connect the Casimir effect to noncommutative geometry, which also aims to accommodate small-scale effects, the difference being that these can now be viewed as intrinsic properties of spacetime. As a result, the noncommutative effects can be implemented by modifying only the energy momentum tensor in the Einstein field equations, while leaving the Einstein tensor unchanged. The wormhole can therefore be macroscopic in spite of the small Casimir effect.

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Kuhfittig, P. (2023) Noncommutative-Geometry Wormholes Based on the Casimir Effect. Journal of High Energy Physics, Gravitation and Cosmology, 9, 295-300. doi: 10.4236/jhepgc.2023.91022.

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