Study of Nonlinear Evolution of Spacetime Fluctuations in Quantum Gravity Inflation for Deriving Primordial Spectrum
Ken-ji Hamada

TL;DR
This paper investigates the nonlinear evolution of quantum spacetime fluctuations during inflation in renormalizable quantum gravity, aiming to derive primordial spectra consistent with observed CMB anisotropies.
Contribution
It introduces a nonlinear evolution framework for quantum gravity fluctuations, including previously neglected terms, and numerically analyzes their impact on primordial spectra.
Findings
Nonlinear terms help maintain initial scale invariance over a wide range.
Numerical solutions show the importance of exponential conformal mode contributions.
Results suggest a pathway to resolving cosmological tensions.
Abstract
We study the evolution of quantum fluctuations of gravity around an inflationary solution in renormalizable quantum gravity, in which the initial scalar-fluctuation dominance is shown by the background-free nature expressed by a special conformal invariance. Inflation ignites at the Planck scale and continues until spacetime phase transition occurs at a dynamical scale about GeV. We can show that during inflation, the initially large scale-invariant fluctuations reduce in amplitude to the appropriate magnitude suggested by tiny CMB anisotropies. The goal of this research is to derive the spectra of scalar fluctuations at the phase transition point, that is, the primordial spectra. A system of nonlinear evolution equations for the fluctuations is derived from the quantum gravity effective action. The running coupling constant is then expressed by a time-dependent average…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Solar and Space Plasma Dynamics
