Universe as a domain wall
- 1 March 1999
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 59 (8), 086001
- https://doi.org/10.1103/physrevd.59.086001
Abstract
It is shown that the effective five-dimensional theory of the strongly coupled heterotic string is a gauged version of five-dimensional supergravity with four-dimensional boundaries. For the universal supermultiplets, this theory is explicitly constructed by a generalized dimensional reduction procedure on a Calabi-Yau manifold. A crucial ingredient in the reduction is the retention of a “non-zero mode” of the four-form field strength, leading to the gauging of the universal hypermultiplet by the graviphoton. We show that this theory has an exact three-brane domain wall solution which reduces to Witten’s “deformed” Calabi-Yau background upon linearization. This solution consists of two parallel three-branes with sources provided by the four-dimensional boundary theories and constitutes the appropriate background for a reduction to four dimensions. Four-dimensional space-time is then identified with the three-brane world volume.
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This publication has 49 references indexed in Scilit:
- Brane tensions and coupling constants from within M-theoryPhysics Letters B, 1998
- M-Theory Inspired No-Scale SupergravityModern Physics Letters A, 1997
- String unification, universal one-loop corrections and strongly coupled heterotic string theoryNuclear Physics B, 1997
- Large-volume string compactifications, revisitedNuclear Physics B, 1997
- Large radii and string unificationPhysics Letters B, 1997
- Gluino condensation in strongly coupled heterotic string theoryPhysical Review D, 1996
- Couplings and scales in strongly coupled heterotic string theoryNuclear Physics B, 1996
- Eleven-dimensional supergravity on a manifold with boundaryNuclear Physics B, 1996
- Strong coupling expansion of Calabi-Yau compactificationNuclear Physics B, 1996
- Heterotic and Type I string dynamics from eleven dimensionsNuclear Physics B, 1996