Neutrino flavor instabilities in neutron star mergers with moment transport: Slow, fast, and collisional modes

Fuente: arXiv
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Auteurs principaux: Froustey, Julien, Foucart, Francois, Hall, Christian, Kneller, James P., Kundu, Debraj, Lin, Zidu, McLaughlin, Gail C., Richers, Sherwood
Format: Preprint
Publié: 2026
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author Froustey, Julien
Foucart, Francois
Hall, Christian
Kneller, James P.
Kundu, Debraj
Lin, Zidu
McLaughlin, Gail C.
Richers, Sherwood
author_facet Froustey, Julien
Foucart, Francois
Hall, Christian
Kneller, James P.
Kundu, Debraj
Lin, Zidu
McLaughlin, Gail C.
Richers, Sherwood
contents Determining where, when, and how neutrino flavor oscillations must be included in large-scale simulations of hot and dense astrophysical environments is an enduring challenge that must be tackled to obtain accurate predictions. Using an angular moment-based linear stability analysis framework, we examine the different kinds of flavor instabilities that can take place in the context of the post-processing of a neutron star merger simulation, with a particular focus on the collisional flavor instability and a careful assessment of several commonly used approximations. First, neglecting anisotropies of the neutrino field, we investigate the extent to which commonly used monoenergetic growth rates reproduce the results obtained from a full multi-energy treatment. Contrary to the large discrepancies found in core-collapse supernova environments, we propose a simple combination of energy-averaged estimates that reproduces the multi-energy growth rates in our representative simulation snapshot. We then quantify the impact of additional physical effects, including nuclear many-body corrections, scattering opacities, and the inclusion of the vacuum term in the neutrino Hamiltonian. Finally, we include the neutrino distribution anisotropies, which allows us to explore, for the first time in a multi-energy setting, the interplay between collisional, fast, and slow modes in a moment-based neutron star merger simulation. We find that, despite a dominance of the fast instability in most of the simulation volume, certain regions exhibit only a collisional instability, while others, especially at large distances, exhibit a slow instability that is largely underestimated if anisotropic effects are neglected.
format Preprint
id arxiv_https___arxiv_org_abs_2601_02461
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Neutrino flavor instabilities in neutron star mergers with moment transport: Slow, fast, and collisional modes
Froustey, Julien
Foucart, Francois
Hall, Christian
Kneller, James P.
Kundu, Debraj
Lin, Zidu
McLaughlin, Gail C.
Richers, Sherwood
High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Determining where, when, and how neutrino flavor oscillations must be included in large-scale simulations of hot and dense astrophysical environments is an enduring challenge that must be tackled to obtain accurate predictions. Using an angular moment-based linear stability analysis framework, we examine the different kinds of flavor instabilities that can take place in the context of the post-processing of a neutron star merger simulation, with a particular focus on the collisional flavor instability and a careful assessment of several commonly used approximations. First, neglecting anisotropies of the neutrino field, we investigate the extent to which commonly used monoenergetic growth rates reproduce the results obtained from a full multi-energy treatment. Contrary to the large discrepancies found in core-collapse supernova environments, we propose a simple combination of energy-averaged estimates that reproduces the multi-energy growth rates in our representative simulation snapshot. We then quantify the impact of additional physical effects, including nuclear many-body corrections, scattering opacities, and the inclusion of the vacuum term in the neutrino Hamiltonian. Finally, we include the neutrino distribution anisotropies, which allows us to explore, for the first time in a multi-energy setting, the interplay between collisional, fast, and slow modes in a moment-based neutron star merger simulation. We find that, despite a dominance of the fast instability in most of the simulation volume, certain regions exhibit only a collisional instability, while others, especially at large distances, exhibit a slow instability that is largely underestimated if anisotropic effects are neglected.
title Neutrino flavor instabilities in neutron star mergers with moment transport: Slow, fast, and collisional modes
topic High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2601.02461