Exploring the Evolution of Nonlinear Electrodynamics in the Universe: A Dynamical Systems Approach
Ricardo Garc\'ia-Salcedo, Isidro G\'omez-Vargas, Tame Gonz\'alez,, Vicent Martinez-Badenes, Israel Quiros

TL;DR
This study examines nonlinear electrodynamics models in cosmology using dynamical systems and Bayesian inference, revealing their evolution, stability, and how they compare to the standard $\\Lambda$CDM model.
Contribution
It introduces specific NLED models and analyzes their stability, causality, and observational viability, providing new insights into their role in cosmic evolution.
Findings
Power-Law model transitions through radiation to matter dominance.
Rational model shows stable, causal behavior within certain parameters.
Bayesian analysis favors $\\Lambda$CDM$ over NLED models for late universe.
Abstract
This paper investigates the dynamics of cosmological models incorporating nonlinear electrodynamics (NLED), focusing on their stability and causality. We explore two specific NLED models: the Power-Law and Rational Lagrangians. We assess these models' viability in describing the universe's evolution using dynamical systems theory and Bayesian inference. We present the theoretical framework of NLED coupled with general relativity, followed by an analysis of the stability and causality through the squared sound speed of the NLED Lagrangians. We then conduct a detailed dynamical analysis to identify the universe's evolution with this matter content. Our results show that the Power-Law Lagrangian model transitions through various cosmological phases from a Maxwell radiation-dominated state to a matter-dominated state. For the Rational Lagrangian model, including the Maxwell term, stable and…
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