Simulations of helical inflationary magnetogenesis and gravitational waves
arXiv:2107.12333 · doi:10.3847/1538-4357/ac20d9
Abstract
Using numerical simulations of helical inflationary magnetogenesis in a low reheating temperature scenario, we show that the magnetic energy spectrum is strongly peaked at a particular wavenumber that depends on the reheating temperature. Gravitational waves (GWs) are produced at frequencies between 3 nHz and 50 mHz for reheating temperatures between 150 MeV and 3x10^5 GeV, respectively. At and below the peak frequency, the stress spectrum is always found to be that of white noise. This implies a linear increase of GW energy per logarithmic wavenumber interval, instead of a cubic one, as previously thought. Both in the helical and nonhelical cases, the GW spectrum is followed by a sharp drop for frequencies above the respective peak frequency. In this magnetogenesis scenario, the presence of a helical term extends the peak of the GW spectrum and therefore also the position of the aforementioned drop toward larger frequencies compared to the case without helicity. This might make a difference in it being detectable with space interferometers. The efficiency of GW production is found to be almost the same as in the nonhelical case, and independent of the reheating temperature, provided the electromagnetic energy at the end of reheating is fixed to be a certain fraction of the radiation energy density. Also, contrary to the case without helicity, the electric energy is now less than the magnetic energy during reheating. The fractional circular polarization is found to be nearly hundred per cent in a certain range below the peak frequency range.
16 pages, 8 figures, 4 tables, submitted to ApJ
References in corpus (21)
- Magnetic fields from inflation?
- N-flationary magnetic fields
- The Spectrum of Gravitational Radiation from Primordial Turbulence
- Adding helicity to inflationary magnetogenesis
- Evolution of Primordial Magnetic Fields from Phase Transitions
- Schwinger Effect in 4D de Sitter Space and Constraints on Magnetogenesis in the Early Universe
- Consistent generation of magnetic fields in axion inflation models
- Classes of hydrodynamic and magnetohydrodynamic turbulent decay
- Evolution of hydromagnetic turbulence from the electroweak phase transition
- Evolution of the Baryon Asymmetry through the Electroweak Crossover in the Presence of a Helical Magnetic Field
- Chiral Anomaly, Schwinger Effect, Euler-Heisenberg Lagrangian, and application to axion inflation
- Challenges in Inflationary Magnetogenesis: Constraints from Strong Coupling, Backreaction and the Schwinger Effect
- Can we observe the QCD phase transition-generated gravitational waves through pulsar timing arrays?
- Early Cosmological Evolution of Primordial Electromagnetic Fields
- Circular Polarization of Gravitational Waves from Early-Universe Helical Turbulence
- Polarization of gravitational waves from helical MHD turbulent sources
- Relic gravitational waves from the chiral magnetic effect
- Baryon isocurvature constraints on the primordial hypermagnetic fields
- The scalar, vector, and tensor modes in gravitational wave turbulence simulations
- Simulating relic gravitational waves from inflationary magnetogenesis
- Tensor spectrum of turbulence-sourced gravitational waves as a constraint on graviton mass