Relaxation of time-variable neutron-loaded relativistic jets across the photosphere and their GeV-TeV neutrino counterparts
Kanako Nakama, Kazumi Kashiyama, and Nobuhiro Shimizu

TL;DR
This study models how time-variable neutron-loaded relativistic jets in gamma-ray bursts dissipate energy and produce GeV-TeV neutrinos, revealing that neutrino energies peak around 10-30 GeV and are influenced by jet variability and gamma-ray efficiency.
Contribution
It introduces a neutron-inclusive shell simulation approach linking jet inhomogeneity to neutrino production, providing new insights into neutrino energies and efficiencies in GRBs.
Findings
Neutrino peak energy is 10-30 GeV regardless of baryon loading.
Higher jet variability amplitude extends neutrino energies into the TeV range.
Neutrino efficiency varies with gamma-ray radiation efficiency, reaching up to 20%.
Abstract
Both observational and theoretical studies indicate that the central engine of a gamma-ray burst (GRB) is intrinsically time-variable, implying jet inhomogeneity. A jet with an inhomogeneous Lorentz factor distribution develops internal shocks both below and above the photosphere, relaxing toward homologous expansion. Below the photosphere, neutrons, whose mean free paths are much longer than those of charged particles, play an essential role in the dissipation process. Using neutron-inclusive shell simulations with initial conditions based on the collapsar scenario, we link the statistical inhomogeneity of the jet at the breakout of the progenitor to the dissipation that occurs inside and outside the photosphere, and calculate the GeV-TeV neutrino counterpart originated from inelastic neutron-proton interactions consistently with the prompt gamma-ray emission. We find that the peak…
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Taxonomy
TopicsGamma-ray bursts and supernovae · Astrophysics and Cosmic Phenomena · Neutrino Physics Research
