Neutrino Fast Flavor Pendulum. Part 2: Collisional Damping
Abstract
In compact astrophysical objects, the neutrino density can be so high that neutrino-neutrino refraction can lead to fast flavor conversion of the kind with , depending on the neutrino angle distribution. Previously, we have shown that in a homogeneous, axisymmetric two-flavor system, these collective solutions evolve in analogy to a gyroscopic pendulum. In flavor space, its deviation from the weak-interaction direction is quantified by a variable that moves between and , the latter following from a linear mode analysis. As a next step, we include collisional damping of flavor coherence, assuming a common damping rate for all modes. Empirically we find that the damped pendular motion reaches an asymptotic level of pair conversion (numerically ) that does not depend on details of the angular distribution (except for fixing ), the initial seed, nor . On the other hand, even a small asymmetry between the neutrino and antineutrino damping rates strongly changes this picture and can even enable flavor instabilities in otherwise stable systems.
Keywords
Cite
@article{arxiv.2209.11235,
title = {Neutrino Fast Flavor Pendulum. Part 2: Collisional Damping},
author = {Ian Padilla-Gay and Irene Tamborra and Georg G. Raffelt},
journal= {arXiv preprint arXiv:2209.11235},
year = {2022}
}
Comments
9 figures, 14 pages. Matches version published in Phys. Rev. D