Non-Singular Bouncing cosmology from Phantom Scalar-Gauss-Bonnet Coupling: Reconstruction with Observational Insights
Khandro K. Chokyi, Surajit Chattopadhyay

TL;DR
This paper explores non-singular bounce cosmology using a phantom scalar-Gauss-Bonnet framework, reconstructing the potential and analyzing observational viability with supernova data and inflation constraints.
Contribution
It introduces a novel reconstruction of the scalar potential in a bounce cosmology model with viscosity effects and assesses its observational consistency.
Findings
Viscosity stabilizes post-bounce dynamics and prevents divergences.
The model fits supernova data with a reduced chi-squared of 0.995.
Reconstructed potential aligns with Planck 2018 inflation constraints.
Abstract
We examine non-singular bounce cosmology within the framework of a phantom scalar field coupled to the Gauss-Bonnet term in both non-viscous and bulk-viscous cases. Using the scale factor ansatz , we reconstruct the scalar field potential , and observe a smooth potential well centered at the bounce point. The resulting energy density, pressure, and equation-of-state parameter show NEC violation necessary for successful bounce, while viscosity controls post-bounce dynamics with a positive and smooth squared speed of sound. In contrast, for the non-viscous model, sharp divergences occur just at the bounce and continues to be negative in the expanding phase, which in turn emphasises the stabilising role of dissipative effects. The energy condition analysis indicates a temporary NEC and SEC violation in the viscous…
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