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arXiv · 2608.07164

Quantum-cosmological corrections to inflationary spectra from Gaussian wave packets

Abstract

In the context of quantum cosmology, we study quantum entanglement in solutions of the Wheeler--DeWitt equation for a homogeneous inflaton--gravity system coupled to perturbations. The wave function describing the homogeneous degrees of freedom is entangled with the wave function describing the perturbations, and this may lead to potentially observable effects on the inflationary spectra. We restrict our analysis to two simplified models that admit a future de Sitter attractor, while neglecting non-adiabatic effects and contributions of order $\mathcal{O}(\hbar^2)$ in the Mukhanov--Sasaki equation. Analytical expressions for the resulting spectra are obtained by marginalising over the homogeneous inflaton variable and can be evaluated in regimes where reliable approximations are available. Small deviations from the standard semiclassical spectra are indeed generated, and these are significantly larger than the quantum-gravitational corrections usually considered in this context.

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BibTeXRIS

Sebastien Sonet, Alessandro Tronconi, Giovanni Venturi. 2026-08-07. Quantum-cosmological corrections to inflationary spectra from Gaussian wave packets. https://arxiv.org/abs/2608.07164

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