Fast neutrino flavor conversion, ejecta properties, and nucleosynthesis in newly-formed hypermassive remnants of neutron-star mergers
Manu George, Meng-Ru Wu, Irene Tamborra, Ricard Ardevol-Pulpillo,, Hans-Thomas Janka

TL;DR
This study investigates neutrino flavor conversions in neutron-star merger remnants and their impact on ejecta properties and heavy element nucleosynthesis, revealing robust r-process production and effects on kilonova observations.
Contribution
It demonstrates that fast neutrino flavor conversions occur in merger remnants regardless of the equation of state or binary mass ratio, influencing nucleosynthesis outcomes.
Findings
Fast neutrino flavor conversions are likely in merger remnants.
Robust r-process nucleosynthesis produces elements up to the third peak.
Ejecta mass of strontium matches kilonova observations.
Abstract
Neutrinos emitted in the coalescence of two neutron stars affect the dynamics of the outflow ejecta and the nucleosynthesis of heavy elements. In this work, we analyze the neutrino emission properties and the conditions leading to the growth of flavor instabilities in merger remnants consisting of a hypermassive neutron star and an accretion disk during the first 10 ms after the merger. The analyses are based on hydrodynamical simulations that include a modeling of neutrino emission and absorption effects via the "Improved Leakage-Equilibration-Absorption Scheme" (ILEAS). We also examine the nucleosynthesis of the heavy elements via the rapid neutron-capture process (r-process) inside the material ejected during this phase. The dominant emission of over from the merger remnant leads to favorable conditions for the occurrence of fast pairwise flavor conversions of…
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