paper

Phase-Space Analysis of Quadratic Dark Energy: Stable Attractors and Their Observational Signatures

arXiv:2605.18240

Abstract

We present a comprehensive phase-space analysis of a quadratic dark energy model where the pressure includes a nonlinear term proportional to the square of the energy density. This minimal extension beyond the CDM framework introduces a dynamical parameter that governs transitions between different cosmological regimes. Through dynamical systems theory, we identify critical points and their stability properties, revealing that negative values drive the system toward stable attractors (sinks) when , which includes both quintessence and phantom regimes. Positive values correspond to unstable repellers (sources) when . The model exhibits a distinctive asymptotic approach to the phantom divide () from both quintessence and phantom sides without actual crossing, providing a non-crossing alternative to the phantom-crossing behavior preferred by recent DESI DR2 constraints. Our analysis shows that stable attractors produce enhanced Hubble expansion rates and more pronounced late-time acceleration, features that can be compared with recent DESI observations suggesting evolving dark energy.

22 pages, 6 figures,2 table, Title modified,Appendix added