arXiv:1907.12594·v3·General Relativity and Quantum Cosmology
Primordial Power Spectra of Cosmological Fluctuations with Generalized Uncertainty Principle and Maximum Length Quantum Mechanics
F. Skara🇬🇷 · L. Perivolaropoulos🇬🇷
Abstract
The existence of the cosmological particle horizon as the maximum measurable length in the universe leads to a generalization of the quantum uncertainty principle (GUP) to the form , where . The effects of this GUP on simple quantum mechanical systems has been shown recently by one of the authors\cite{Perivolaropoulos:2017rgq} to be extremely small (beyond current measurements) due to the extremely large scale of the current particle horizon. This is not the case in the Early Universe during the quantum generation of the inflationary primordial fluctuation spectrum. We estimate the effects of such GUP on the primordial fluctuation spectrum and on the corresponding spectral index. We generalize the field commutation (GFC) relation to =, where is a GFC parameter, denotes a scalar field and denotes its canonical conjugate momentum. We obtain the predicted primordial perturbation spectrum as where (here is the volume corresponding to ) and is the standard primordial spectrum obtained in the context of the Heisenberg uncertainty principle (). We show that the predicted scalar spectral index is where is a slow-roll parameter. Using observational constraints on the scale dependence of the spectral index we show that the range of corresponds to which is of the same order as the current particle horizon.
Comments: 12 pages, 3 figures. Published version. Comments added, figure added, improved statistical analysis. The Mathematica file that was used for the production of the figures may be downloaded from http://leandros.physics.uoi.gr/GUP-GFC/