2016/06/30 by Daegene Koh, John Wise, John H. Wise · 1 citation
Physics and Astronomy · #Astronomy #Astrophysics #Astrophysics and Star Formation Studies #Dynamo #Galaxies: Formation, Evolution, Phenomena #Galaxy #Gravitational collapse #Halo #Magnetic field #Magnetohydrodynamics #Physics #Population #Solar and Space Plasma Dynamics #Star formation #Supernova #astro-ph.GA
paper · pdf · doi:10.1093/mnras/stw1673
published as Monthly Notices of the Royal Astronomical Society 2016 462 (1): 81-91 · 13 pages, 10 figures, Accepted in MNRAS
arxiv created 2016/07/08 · openalex publication_date 2016/07/13 · arxiv updated 2016/08/03 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06
Magnetic fields permeate the Universe on all scales and play a key role during star formation. We study the evolution of magnetic fields around a massive metal-free (Population III) star at z ∼ 15 during the growth of its H ii region and subsequent supernova explosion by conducting three cosmological magnetohydrodynamics simulations with radiation transport. Given the theoretical uncertainty and weak observational constraints of magnetic fields in the early universe, we initialize the simulations with identical initial conditions only varying the seed field strength. We find that magnetic fields grow as ρ2/3 during the gravitational collapse preceding star formation, as expected from ideal spherical collapse models. Massive Population III stars can expel a majority of the gas from the host halo through radiative feedback, and we find that the magnetic fields are not amplified above the spherical collapse scaling relation during this phase. However, afterwards when its supernova remnant can radiatively cool and fragment, the turbulent velocity field in and around the shell causes the magnetic field to be significantly amplified on average by ∼100 in the shell and up to 6 orders of magnitude behind the reverse shock. Within the shell, field strengths are on the order of a few nG at a number density of 1 cm−3. We show that this growth is primarily caused by small-scale dynamo action in the remnant. These strengthened fields will propagate into the first generations of galaxies, possibly affecting the nature of their star formation.