Significance of a quadratically varying deceleration parameter in scalar field-dominated model and cosmic acceleration

Author:

Mishra Keshav Ram1ORCID,Chaudhary Himanshu234ORCID,Kumar Rajesh13ORCID,Nekouee Z.5ORCID,Pacif Shibesh Kumar Jas3ORCID

Affiliation:

1. Department of Mathematics and Statistics, Deen Dayal Upadhyaya Gorakhpur University, Gorakhpur, Uttar Pradesh, India

2. Department of Applied Mathematics, Delhi Technological University, New Delhi 110042, Delhi NCT, India

3. Pacif Institute of Cosmology and Selfology (PICS), Sagara, Sambalpur 768224, Odisha, India

4. Department of Mathematics, Shyamlal College, University of Delhi, New Delhi 110032, Delhi NCT, India

5. School of Physics, Damghan University, Damghan, 3671641167, Iran

Abstract

In this study, we explore the enigma of late-time cosmic acceleration in the framework of a general scalar field playing the role of dark energy. Our investigation yields an exact solution to Einstein’s field equations, achieved through a parametrization of the deceleration parameter [Formula: see text] in quadratic form in the homogeneous and isotropic background geometry represented by Friedmann–Lemaître–Robertson–Walker (FLRW) spacetime. This parametrization unveils a seamless transition from a decelerated to an accelerated phase in the cosmic evolution. Furthermore, we leverage this parametrization to reconstruct cosmological parameters with respect to redshift z, elucidating their dependency on certain model parameters that govern the universe’s evolutionary trajectory. The model parameters are subsequently constrained using diverse observational datasets. We provide a comprehensive analysis of the evolution of geometrical and physical parameters, complete with the numerically constrained values. To gain deeper insights into the nature of dark energy, we employ Statefinder diagnostics, conducting a thorough examination. Our findings shed light on the intricate interplay between cosmic acceleration, quintessential dark energy and the parametrization of deceleration parameter, offering valuable insights into the fundamental dynamics of the universe.

Publisher

World Scientific Pub Co Pte Ltd

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