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Application of the Campbell–Magaard theorem to higher-dimensional physics

Sanjeev S Seahra et al 2003 Class. Quantum Grav. 20 1321-1339   doi: 10.1088/0264-9381/20/7/306  Help

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Sanjeev S Seahra and Paul S Wesson
Department of Physics, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada
E-mail: ssseahra@uwaterloo.ca and wesson@astro.uwaterloo.ca

Abstract. Stated succinctly, the original version of the Campbell–Magaard theorem says that it is always possible to locally embed any solution of four-dimensional general relativity in a five-dimensional Ricci-flat manifold. We discuss the proof of this theorem (and its variants) in n dimensions, and its application to current theories that postulate that our universe is a four-dimensional hypersurface Σ0 within a five-dimensional manifold, such as space–time–matter (STM) theory and the Randall and Sundrum (RS) braneworld scenario. In particular, we determine whether or not arbitrary spacetimes may be embedded in such theories, and demonstrate how these seemingly disparate models are interconnected. Special attention is given to the motion of test observers in five dimensions, and the circumstances under which they are confined to Σ0. For each five-dimensional scenario considered, the requirement that observers be confined to the embedded spacetime places restrictions on the 4-geometry. For example, we find that observers in the thin braneworld scenario can be localized around the brane if its total stress–energy tensor obeys the five-dimensional strong energy condition. As a concrete example of some of our technical results, we discuss a Bbb Z2 symmetric embedding of the standard radiation-dominated cosmology in a five-dimensional vacuum.

PACS numbers: 04.50.+h, 04.20.Cv

Print publication: Issue 7 (7 April 2003)
Received 3 January 2003
Published 10 March 2003

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