Inflation driven by non-linear electrodynamics
Creators
- 1. Department of Applied Physics and Astronomy, University of Sharjah, Sharjah, United Arab Emirates
- 2. Departamento de Matemáticas, Universidad Católica del Norte, Avda. Angamos 0610, Casilla, Antofagasta, 1280, Chile
- 3. Physics Department, Eastern Mediterranean University, North Cyprus Via Mersin 10, Famagusta, 99628, Turkey
- 4. Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de México, AP 70543, Mexico, 04510, Mexico
Description
We investigate the inflation driven by a nonlinear electromagnetic field based on an NLED lagrangian density ${L}_{\text{nled}}=-Ff\left(F\right)$ , where $f\left(F\right)$ is a general function depending on F. We first formulate an f-NLED cosmological model with a more general function $f\left(F\right)$ and show that all NLED models can be expressed in this framework; then, we investigate in detail two interesting examples of the function $f\left(F\right)$ . We present our phenomenological model based on a new Lagrangian for NLED. Solutions to the field equations with the physical properties of the cosmological parameters are obtained. We show that the early Universe had no Big-Bang singularity, which accelerated in the past. We also investigate the qualitative implications of NLED by studying the inflationary parameters, like the slow-roll parameters, spectral index ${n}_{s}$ , and tensor-to-scalar ratio r, and compare our results with observational data. Detailed phase-space analysis of our NLED cosmological model is performed with and without matter source. As a first approach, we consider the motion of a particle of unit mass in an effective potential. Our systems correspond to fast-slow systems for physical values of the electromagnetic field and the energy densities at the end of inflation. We analyze a complementary system using Hubble-normalized variables to investigate the cosmological evolution before the matter-dominated Universe.
Files
s10052-023-11481-3_a.pdf
Files
(1.8 MB)
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