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  4. The Universe Acceleration From The Unimodular Gravity View Point: Background And Linear Perturbations
 
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The Universe Acceleration From The Unimodular Gravity View Point: Background And Linear Perturbations

Journal
Physics of the Dark Universe
Date Issued
2021-05-01
Author(s)
Miguel A. García-Aspeitia
A. Hernández-Almada
Juan Magaña
Motta, Verónica  
Facultad de Ciencias  
DOI
10.1016/j.dark.2021.100840
WoS ID
WOS:000687460100001
Abstract
With the goal of studying the cosmological constant (CC) problem, we present an exhaustive analysis of unimodular gravity as a possible candidate to resolve the CC origin and with this, the current Universe acceleration. In this theory, a correction constant (CC-like) in the field equations sources the late cosmic acceleration. This constant is related to a new parameter, zini, which is interpreted as the redshift of CC-like emergence. By comparing with the CC value obtained from Planck and Supernovaes measurements, it is possible to estimate zini=11.15−0.02+0.01 and zini=11.43−0.06+0.03 respectively, which is close to the reionization epoch. Moreover, we use the observational Hubble data (OHD), Type Ia Supernovae (SnIa), Baryon Acoustic Oscillations (BAO) and the Cosmic Microwave Background Radiation (CMB) distance data to constrain the UG cosmological parameters. A Joint analysis (OHD+SnIa+BAO+CMB), results in zini=11.47−0.073+0.074 within 1σ confidence level consistent with our estimation from Planck and Supernovae measurements. We also include linear perturbations, starting with scalar and tensor perturbations and complementing with the perturbed Boltzmann equation for photons. We show that the 00 term in the UG field equations and the Boltzmann equation for photons contains corrections, meanwhile the other equations are similar as those obtained in standard cosmology.
Subjects

Astronomy And Astroph...

Space And Planetary S...

OCDE Subjects

Natural Sciences::Phy...

Quartile (Date Issued)
Q2
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