Primodial power spectrum in loop quantum cosmology for different regularizations

Fuente: arXiv
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Main Authors: Kowalczyk, Maciej, Marugán, Guillermo A. Mena, Pawłowski, Tomasz
Format: Preprint
Published: 2025
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author Kowalczyk, Maciej
Marugán, Guillermo A. Mena
Pawłowski, Tomasz
author_facet Kowalczyk, Maciej
Marugán, Guillermo A. Mena
Pawłowski, Tomasz
contents In Loop Quantum Cosmology, the quantization of the Hamiltonian constraint involves a regularization procedure which is affected by certain ambiguities. Moreover, different regularizations lead to distinct mathematical formulations and, consequently, to different physical predictions. In this work, we explore the impact of this regularization on the primordial power spectrum of cosmological perturbations. More specifically, we study this power spectrum for the conventional regularization used in Loop Quantum Cosmology and for two alternative prescriptions suggested in the literature. We set initial conditions for the perturbations at the bounce corresponding to a recently proposed vacuum state, optimally adapted to the background dynamics. This choice of vacuum is based on an asymptotic Hamiltonian diagonalization in the ultraviolet sector of the perturbations which provides a non-oscillating power spectrum. Employing a suitable approximation to the propagation equations of the perturbations around the bounce, we are able to obtain an analytic expression for the primordial power spectrum of this vacuum for all the discussed regularizations. We compare the results and prove that the main relevant distinction between the corresponding spectra is the scale where power suppression occurs. The associated wavenumber scale is proportional to the square root of the critical density in Loop Quantum Cosmology, density which is different for each of the studied regularizations.
format Preprint
id arxiv_https___arxiv_org_abs_2503_16377
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Primodial power spectrum in loop quantum cosmology for different regularizations
Kowalczyk, Maciej
Marugán, Guillermo A. Mena
Pawłowski, Tomasz
General Relativity and Quantum Cosmology
In Loop Quantum Cosmology, the quantization of the Hamiltonian constraint involves a regularization procedure which is affected by certain ambiguities. Moreover, different regularizations lead to distinct mathematical formulations and, consequently, to different physical predictions. In this work, we explore the impact of this regularization on the primordial power spectrum of cosmological perturbations. More specifically, we study this power spectrum for the conventional regularization used in Loop Quantum Cosmology and for two alternative prescriptions suggested in the literature. We set initial conditions for the perturbations at the bounce corresponding to a recently proposed vacuum state, optimally adapted to the background dynamics. This choice of vacuum is based on an asymptotic Hamiltonian diagonalization in the ultraviolet sector of the perturbations which provides a non-oscillating power spectrum. Employing a suitable approximation to the propagation equations of the perturbations around the bounce, we are able to obtain an analytic expression for the primordial power spectrum of this vacuum for all the discussed regularizations. We compare the results and prove that the main relevant distinction between the corresponding spectra is the scale where power suppression occurs. The associated wavenumber scale is proportional to the square root of the critical density in Loop Quantum Cosmology, density which is different for each of the studied regularizations.
title Primodial power spectrum in loop quantum cosmology for different regularizations
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2503.16377