Abstract

We present a detailed derivation of the recently suggested new type of hill-top inflation [arXiv:1509.07270] originating from the microcanonical density matrix initial conditions in cosmology driven by conformal field theory (CFT). The cosmological instantons of topology $S^1\times S^3$, which set up these initial conditions, have the shape of a garland with multiple periodic oscillations of the scale factor of the spatial $S^3$-section. They describe underbarrier oscillations of the inflaton and scale factor in the vicinity of the inflaton potential maximum, which gives a sufficient amount of inflation required by the known CMB data. We build the approximation of two coupled harmonic oscillators for these garland instantons and show that they can generate inflation consistent with the parameters of the CMB primordial power spectrum in the non-minimal Higgs inflation model and in $R^2$ gravity. In particular, the instanton solutions provide smallness of inflationary slow-roll parameters $\epsilon$ and $\eta<0$ and their relation $\epsilon\sim\eta^2$ characteristic of these two models. We present the mechanism of formation of hill-like inflaton potentials, which is based on logarithmic loop corrections to the asymptotically shift-invariant tree level potentials of these models in the Einstein frame. We also discuss the role of $R^2$-gravity as an indispensable finite renormalization tool in the CFT driven cosmology, which guarantees the non-dynamical (ghost free) nature of its scale factor and special properties of its cosmological garland type instantons. Finally, as a solution to the problem of hierarchy between the Planckian scale and the inflation scale we discuss the concept of a hidden sector of conformal higher spin fields.

Highlights

  • The problem of initial conditions in cosmology [1,2,3,4,5,6,7] as a source of the inflationary scenario starts attracting attention again

  • It suggests the approximation of coupled harmonic oscillators for cosmological instantons in the regime of the Euclidean “slow roll”, which set up the initial conditions for inflation in physical spacetime, starting in the vicinity of the top of the inflaton potential

  • We want to emphasize here that this renormalization results in twofold consequences—conformal field theory (CFT) quantum corrections preserving the non-dynamical nature of the scale factor and a particular value of the Casimir energy ∼ Bm2P /2 = 3β/8, which universally expresses via the topological (Gauss–Bonnet) coefficient in the conformal anomaly

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Summary

Introduction

The problem of initial conditions in cosmology [1,2,3,4,5,6,7] as a source of the inflationary scenario starts attracting attention again. It suggests the approximation of coupled harmonic oscillators for cosmological instantons in the regime of the Euclidean “slow roll”, which set up the initial conditions for inflation in physical spacetime, starting in the vicinity of the top of the inflaton potential. 5 a similar mechanism is discussed for the Starobinsky model of R2-gravity which is shown to play a double role in the CFT scenario: finite renormalization of the quantum effective action, which provides special properties of the cosmological instantons, and generation of the dynamical inflaton feeding the CFT scenario with the hill-like potential. Two appendices contain technical details of the harmonic oscillator approximation and its Euclidean “slow-roll” regime

Model with a fundamental cosmological constant
Minimally coupled scalar field inflaton in CFT cosmology
Harmonic oscillator approximation
Inflation stage and its slow-roll parameters
Fast oscillations of the scale factor
Non-minimal Higgs inflation: the mechanism of hill-like inflaton potential
CFT driven cosmology and the Starobinsky R2 model
Hierarchy problem and higher spin conformal fields
Conclusions
B μ2 m 2
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