Is Eddington-Born-Infeld theory really free of cosmological singularities?
arXiv:1302.5013 · doi:10.1140/epjc/s10052-014-2802-x
Abstract
The Eddington-inspired-Born-Infeld (EiBI) theory has been recently resurrected. Such a theory is characterized by being equivalent to Einstein theory in vacuum but differing from it in the presence of matter. One of the virtues of the theory is to avoid the Big Bang singularity for a radiation filled universe. In this paper, we analyze singularity avoidance in this kind of model. More precisely, we analyze the behavior of a homogeneous and isotropic universe filled with phantom energy in addition to the dark and baryonic matter. Unlike the Big Bang singularity that can be avoided in this kind of model through a bounce or a loitering effect on the physical metric, we find that the Big Rip singularity is unavoidable in the EiBI phantom model even though it can be postponed towards a slightly further future cosmic time as compared with the same singularity in other models based on the standard general relativity and with the same matter content described above.
5 pages
References in corpus (11)
- Extended Theories of Gravity and their Cosmological and Astrophysical Applications
- Worse than a big rip?
- Classification of cosmological milestones
- New insights on the matter-gravity coupling paradigm
- Surface singularities in Eddington-inspired Born-Infeld gravity
- Bouncing Eddington-inspired Born-Infeld cosmologies: an alternative to Inflation ?
- Eddington-inspired Born-Infeld gravity: astrophysical and cosmological constraints
- Eddington-inspired Born-Infeld gravity. Phenomenology of non-linear gravity-matter coupling
- Testing alternative theories of gravity using the Sun
- Cosmology with Eddington-inspired Gravity
- A tensor instability in the Eddington inspired Born-Infeld Theory of Gravity
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- The final state of gravitational collapse in Eddington-inspired Born-Infeld theory
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- Gravitational collapse in -dimensional Eddington-inspired Born-Infeld gravity
- On the Consistency of the Wheeler-DeWitt Equation in the Quantized Eddington-inspired Born-Infeld Gravity
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