2019The Astrophysical JournalOpen access

Big Bounce and Closed Universe from Spin and Torsion

Gabriel Unger, Nikodem J. Popławski

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Abstract

Abstract We analyze the dynamics of a homogeneous and isotropic universe in the Einstein–Cartan theory of gravity. The coupling between the spin and torsion prevents gravitational singularities and replaces the Big Bang with a nonsingular big bounce, at which the universe transitions from contraction to expansion. We show that a closed universe exists only when the product of the scale factor and temperature is higher than a particular threshold, contrary to a flat universe and an open universe, which are not restricted. During inflation, this product must increase to another threshold, so that the universe can reach dark-energy acceleration.

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Abstract We analyze the dynamics of a homogeneous and isotropic universe in the Einstein–Cartan theory of gravity. The coupling between the spin and torsion prevents gravitational singularities and replaces the Big Bang with a nonsingular big bounce, at which the universe transitions from contraction to expansion. We show that a closed universe exists only when the product of the scale factor and temperature is higher than a particular threshold, contrary to a flat universe and an open universe, which are not restricted. During inflation, this product must increase to another threshold, so that the universe can reach dark-energy acceleration.

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Available abstract

Abstract We analyze the dynamics of a homogeneous and isotropic universe in the Einstein–Cartan theory of gravity. The coupling between the spin and torsion prevents gravitational singularities and replaces the Big Bang with a nonsingular big bounce, at which the universe transitions from contraction to expansion. We show that a closed universe exists only when the product of the scale factor and temperature is higher than a particular threshold, contrary to a flat universe and an open universe, which are not restricted. During inflation, this product must increase to another threshold, so that the universe can reach dark-energy acceleration.

Key concepts: Flatness problem, Physics, Big Rip, Zero-energy universe, Big Bounce, De Sitter universe, Metric expansion of space, Phantom energy

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