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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Prof Andre Lukas

Professor of Theoretical Physics, Head of Theoretical Physics

Research theme

  • Fundamental particles and interactions
  • Fields, strings, and quantum dynamics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Particle theory
Andre.Lukas@physics.ox.ac.uk
Telephone: 01865 (2)73953
Rudolf Peierls Centre for Theoretical Physics, room 70.11
  • About
  • Publications

Five-Branes in Heterotic Brane-World Theories

(2001)

Authors:

Matthias Brandle, Andre Lukas

Moving Five-Branes in Low-Energy Heterotic M-Theory

(2001)

Authors:

Edmund J Copeland, James Gray, Andre Lukas

Brane-World Inflation and the Transition to Standard Cosmology

(2001)

Authors:

Andre Lukas, David Skinner

Neutrino Masses and Mixing in Brane World Theories

Journal of High Energy Physics (2001)

Authors:

A Lukas, Andrea Romanino, Graham Ross, Pierre Ramond

Brane-world inflation and the transition to standard cosmology

Journal of High Energy Physics 5:9 (2001)

Authors:

A Lukas, D Skinner

Abstract:

In the context of a five-dimensional brane-world model motivated from heterotic M-theory, we develop a framework for potential-driven brane-world inflation. Specifically this involves a classification of the various background solutions of (A)dS5 type, an analysis of five-dimensional slow-roll conditions and a study of how a transition to the flat vacuum state can be realized. It is shown that solutions with bulk potential and both brane potentials positive exist but are always non-separating and have a non-static orbifold. It turns out that, for this class of backgrounds, a transition to the flat vacuum state during inflation is effectively prevented by the rapidly expanding orbifold. We demonstrate that such a transition can be realized for solutions where one boundary potential is negative. For this case, we present two concrete inflationary models which exhibit the transition explicitly.

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