Magnetic Fields from Compensated Isocurvature Perturbations
Abstract
Compensated isocurvature perturbations (CIPs) are perturbations to the primordial baryon density that are accompanied by dark-matter-density perturbations so that the total matter density is unperturbed. Such CIPs, which may arise in some multi-field inflationary models, can be long-lived and only weakly constrained by current cosmological measurements. Here we show that the CIP-induced modulation of the electron number density interacts with the electron-temperature fluctuation associated with primordial adiabatic perturbations to produce, via the Biermann-battery mechanism, a magnetic field in the post-recombinaton Universe. Assuming the CIP amplitude saturates the current BBN bounds, this magnetic field can be stronger than at and stronger by an order of magnitude than that (produced at second order in the adiabatic-perturbation amplitude) in the standard cosmological model, and thus can serve as a possible seed for galactic dynamos.
Cite
@article{arxiv.2304.03299,
title = {Magnetic Fields from Compensated Isocurvature Perturbations},
author = {Jordan Flitter and Cyril Creque-Sarbinowski and Marc Kamionkowski and Liang Dai},
journal= {arXiv preprint arXiv:2304.03299},
year = {2023}
}
Comments
7 pages, 2 figures, version accepted for publication in PRD