Neutrino-electron magnetohydrodynamics in an expanding Universe
POSTER
Abstract
We derive a new model for neutrino-plasma interactions in an expanding universe that incorporates the collective effects of the neutrinos on the plasma constituents. We start from the kinetic description of a multi-species plasma in the flat Friedmann-Robertson-Walker metric, where the particles are coupled to neutrinos through the charged- and neutral-current forms of the weak interaction. We then derive the fluid equations and specialize our model to (a) the lepton epoch, where we consider a pair electron-positron plasma interacting with electron (anti-)neutrinos, and (b) after the electron-positron annihilation, where we model an electron-proton plasma and take the limit of slow ions and inertia-less electrons to obtain a set of neutrino-electron magnetohydrodynamics (NEMHD) equations. In both models, the dynamics of the plasma is affected by the neutrino motion through a ponderomotive force and, as a result, new terms appear in the induction equation that can act as a source for magnetic field generation in the early universe. A brief discussion on the possible applications of our model is proposed.
*L.M.P. is funded by the STFC CDT in Data Intensive Science at the University of Cambridge, and acknowledges the hospitality of the Rutherford Appleton Laboratory and of the Atomic and Laser Physics Department at the University of Oxford where this work was carried out as part of an internship. The research leading to these results have been funded in parts by the Engineering and Physical Sciences Research Council (grant numbers EP/M022331/1 and EP/N014472/1).
Publication: https://arxiv.org/abs/2106.14892, submitted to Physical Review D
Presenters
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Lorenzo Maria Perrone