6 research outputs found
Universe from vacuum in loop-string cosmology
In this paper we study the description of the Universe based on the low
energy superstring theory modified by the Loop Quantum Gravity effects.This
approach was proposed by De Risi et al. in the Phys. Rev. D {\bf 76} (2007)
103531. We show that in the contrast with the string motivated pre-Big Bang
scenario, the cosmological realisation of the -duality transformation is not
necessary to avoid an initial singularity. In the model considered the universe
starts its evolution in the vacuum phase at time . In this phase
the scale factor , energy density and coupling of the
interactions . After this stage the universe evolves to the
non-singular hot Big Bang phase . Then the
standard classical universe emerges. During the whole evolution the scale
factor increases monotonically. We solve this model analytically. We also
propose and solve numerically the model with an additional dilaton potential in
which the universe starts the evolution from the asymptotically free vacuum
phase and then evolves non-singularly to the emerging dark energy
dominated phase with the saturated coupling constant .Comment: JHEP3 LaTeX class, 19 pages, 9 figures, v2: added some comments and
references, v3: new numerical result added, new figure
A quantum gravitational inflationary scenario in Bianchi-I spacetime
We investigate the inflationary model in the Bianchi-I spacetime
using effective spacetime description of loop quantum cosmology to understand
the issues of the resolution of initial singularity, isotropization, effect of
anisotropies on amount of inflation, and the phase space attractors in the
presence of non-perturbative quantum gravitational modifications. A comparative
analysis with the classical theory by including more general initial conditions
than the ones previously considered in the latter is also performed. We show
that, in general, the classical singularity is replaced by a bounce of the mean
scale factor in loop quantum cosmology. Due to the underlying quantum geometric
effects, the energy density of the inflaton and the anisotropic shear remain
bounded throughout the non-singular evolution. Starting from arbitrary
anisotropic initial conditions, a loop quantum universe isotropizes either
before or soon after the onset of slow-roll inflation. We find a double
attractor behavior in the phase space dynamics of loop quantum cosmology,
similar to the one in classical theory, but with some additional subtle
features. Quantum modifications to the dynamical equations are such that,
unlike the classical theory, the amount of inflation does not monotonically
depend on the initial anisotropy in loop quantum cosmology. Our results suggest
that a viable non-singular inflationary model can be constructed from highly
anisotropic initial conditions in the Planck regime.Comment: 35 pages, 19 figures. References added. Minor changes to match
published version. To appear in CQ
Beyond ΛCDM: Problems,solutions,and the road ahead
Despite its continued observational successes, there is a persistent (and growing) interest in extending cosmology beyond the standard model, ΛCDM. This is motivated by a range of apparently serious theoretical issues, involving such questions as the cosmological constant problem, the particle nature of dark matter, the validity of general relativity on large scales, the existence of anomalies in the CMB and on small scales, and the predictivity and testability of the inflationary paradigm. In this paper, we summarize the current status of ΛCDM as a physical theory, and review investigations into possible alternatives along a number of different lines, with a particular focus on highlighting the most promising directions. While the fundamental problems are proving reluctant to yield, the study of alternative cosmologies has led to considerable progress, with much more to come if hopes about forthcoming high-precision observations and new theoretical ideas are fulfilled