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arXiv · gr-qc/9606027

Stress-Energy Must be Singular on the Misner Space Horizon even for Automorphic Fields

Abstract

We use the image sum method to reproduce Sushkov's result that for a massless automorphic field on the initial globally hyperbolic region $IGH$ of Misner space, one can always find a special value of the automorphic parameter $α$ such that the renormalized expectation value $\langleα|T_{ab}|α\rangle$ in the {\it Sushkov state} ``$\langleα|\cdot|α\rangle$'' (i.e. the automorphic generalization of the Hiscock-Konkowski state) vanishes. However, we shall prove by elementary methods that the conclusions of a recent general theorem of Kay-Radzikowski-Wald apply in this case. I.e. for any value of $α$ and any neighbourhood $N$ of any point $b$ on the chronology horizon there exists at least one pair of non-null related points $(x,x') \in (N\cap IGH)\times (N\cap IGH)$ such that the renormalized two-point function of an automorphic field $G^α_{\rm ren}(x,x')$ in the Sushkov state is singular. In consequence $\langleα|T_{ab}|α\rangle$ (as well as other renormalized expectation values such as $\langleα|ϕ^2|α\rangle$) is necessarily singular {\it on} the chronology horizon. We point out that a similar situation (i.e. singularity {\it on} the chronology horizon) holds for states on Gott space and Grant space.

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BibTeXRIS

Claes R Cramer, Bernard S. Kay. 1996-06-13. Stress-Energy Must be Singular on the Misner Space Horizon even for Automorphic Fields. https://doi.org/10.1088/0264-9381%2F13%2F12%2F002

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