Non-adiabatic Evolution of Primordial Perturbations and non-Gaussinity in Hybrid Approach of Loop Quantum Cosmology
Qiang Wu, Tao Zhu, and Anzhong Wang

TL;DR
This paper studies how the quantum bounce in loop quantum cosmology affects primordial perturbations, revealing non-adiabatic evolution and non-Gaussian features that could explain CMB power asymmetry.
Contribution
It introduces an analytical approach to model the quantum bounce effects on primordial perturbations using a P"{o}schl-Teller potential in the hybrid LQC framework.
Findings
Effective potentials approximated by P"{o}schl-Teller potential
Non-adiabatic evolution of perturbations during bounce
Implications for CMB non-Gaussianity and power asymmetry
Abstract
While loop quantum cosmology (LQC) predicts a robust quantum bounce of the background evolution of a Friedmann-Robertson-Walker (FRW) spacetime prior to the standard slow-roll inflation, whereby the big bang singularity is resolved, there are several different quantization procedures to cosmological perturbations, for instance, {\em the deformed algebra, dressed metric, and hybrid quantizations}. This paper devotes to study the quantum bounce effects of primordial perturbations in the hybrid approach. The main discrepancy of this approach is the effective positive mass at the quantum bounce for the evolution of the background that is dominated by the kinetic energy of the inflaton field at the bounce, while this mass is always nonpositive in the dressed metric approach. It is this positivity of the effective mass that violates the adiabatic evolution of primordial perturbations at the…
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