English

Dynamical compactification from de Sitter space

High Energy Physics - Theory 2011-04-14 v2

Abstract

We show that D-dimensional de Sitter space is unstable to the nucleation of non-singular geometries containing spacetime regions with different numbers of macroscopic dimensions, leading to a dynamical mechanism of compactification. These and other solutions to Einstein gravity with flux and a cosmological constant are constructed by performing a dimensional reduction under the assumption of q-dimensional spherical symmetry in the full D-dimensional geometry. In addition to the familiar black holes, black branes, and compactification solutions we identify a number of new geometries, some of which are completely non-singular. The dynamical compactification mechanism populates lower-dimensional vacua very differently from false vacuum eternal inflation, which occurs entirely within the context of four-dimensions. We outline the phenomenology of the nucleation rates, finding that the dimensionality of the vacuum plays a key role and that among vacua of the same dimensionality, the rate is highest for smaller values of the cosmological constant. We consider the cosmological constant problem and propose a novel model of slow-roll inflation that is triggered by the compactification process.

Keywords

Cite

@article{arxiv.0904.3115,
  title  = {Dynamical compactification from de Sitter space},
  author = {Sean M. Carroll and Matthew C. Johnson and Lisa Randall},
  journal= {arXiv preprint arXiv:0904.3115},
  year   = {2011}
}

Comments

Revtex. 41 pages with 24 embedded figures. Minor corrections and added references

R2 v1 2026-06-21T12:53:19.678Z