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Brane Gases on K3 and Calabi-Yau Manifolds

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arxiv hep-th/0110225 v3 pith:LYFTG4DA submitted 2001-10-24 hep-th astro-phgr-qchep-ph

Brane Gases on K3 and Calabi-Yau Manifolds

classification hep-th astro-phgr-qchep-ph
keywords branecalabi-yaustringtheorycompactificationscompactifiedcontextduality
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We initiate the study of Brane Gas Cosmology (BGC) on manifolds with non-trivial holonomy. Such compactifications are required within the context of superstring theory in order to make connections with realistic particle physics. We study the dynamics of brane gases constructed from various string theories on background spaces having a K3 submanifold. The K3 compactifications provide a stepping stone for generalising the model to the case of a full Calabi-Yau three-fold. Duality symmetries are discussed within a cosmological context. Using a duality, we arrive at an N=2 theory in four-dimensions compactified on a Calabi-Yau manifold with SU(3) holonomy. We argue that the Brane Gas model compactified on such spaces maintains the successes of the trivial toroidal compactification while greatly enhancing its connection to particle physics. The initial state of the universe is taken to be a small, hot and dense gas of p-branes near thermal equilibrium. The universe has no initial singularity and the dynamics of string winding modes allow three spatial dimensions to grow large, providing a possible solution to the dimensionality problem of string theory.

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