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July 27, 2023The European Physical Journal C64 citationsOpen Access

Observational constraints on a logarithmic scalar field dark energy model and black hole mass evolution in the Universe

DWDan WangChina National Petroleum Corporation (China)MKM. KoussourUniversity of Hassan II CasablancaAMAdnan MalikKhazar University

Key Points

  • Propose a two-parameter logarithmic scalar field dark energy model within general relativity and evaluate its cosmological parameters alongside black hole mass evolution.
  • Parametrized dark energy density using a logarithmic scalar field function characterized by two parameters (alpha and beta).
  • Constrained cosmological parameters by combining cosmic chronometers (CC), Baryon Acoustic Oscillation (BAO), and Supernovae (SN) datasets.
  • Analyzed the theoretical mass evolution of black holes across cosmic time in a universe filled with matter and dark energy.
  • The joint CC + BAO + SN analysis yielded a transition redshift of z_tr = 0.79 ± 0.02 and a present deceleration parameter of q_0 = -0.43 ± 0.06.
  • Best-fit parameters yielded a matter density of Omega_m0 = 0.25849 (+0.00026/-0.00025) and a Hubble constant of H_0 = 67.79 ± 0.59 km/s/Mpc, aligning with Planck 2018 limits.
  • Black hole mass increases during the matter-dominated era but ceases growth once dark energy dominates cosmic expansion.

Abstract

Abstract We propose a logarithmic parametrization form of energy density for the scalar field dark energy in the framework of the standard theory of gravity, which supports the necessary transition from the decelerated to the accelerated behavior of the Universe. The model under consideration is constrained by available observational data, including cosmic chronometers data-sets (CC), Baryonic Acoustic Oscillation (BAO) data-sets, and Supernovae (SN) data-sets, consisting of only two parameters α and β. The combined CC + BAO + SN data-sets yields a transition redshift of zₓₑ=0. 79^+0. 02-₀. ₀₂ z tr = 0. 79 - 0. 02 + 0. 02, where the model exhibits signature-flipping and is consistent with recent observations. For the combined data-sets, the present value of the deceleration parameter is calculated to be q₀=-0. 43^+0. 06-₀. ₀₆ q 0 = - 0. 43 - 0. 06 + 0. 06. Furthermore, the analysis yields constraints on both the parameter density value for matter and the present value of the Hubble parameter, with values of ₌₀=0. 25849^+0. 00026-₀. ₀₀₀₂₅ Ω m 0 = 0. 25849 - 0. 00025 + 0. 00026 and H₀=67. 79-₀. ₅₉^+0. 59 H 0 = 67. 79 - 0. 59 + 0. 59 km/s/Mpc, respectively, consistent with the results obtained from Planck 2018. Finally, the study investigates how the mass of a black hole evolves over time in a Universe with both matter and dark energy. It reveals that the black hole mass increases initially but stops increasing as dark energy dominates.

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Cite This Study

Wang et al. (2023) studied this question.

synapsesocial.com/papers/6a11c2f8076551541817964ahttps://doi.org/10.1140/epjc/s10052-023-11744-z
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