English

r-Process Lanthanide Production and Heating Rates in Kilonovae

High Energy Astrophysical Phenomena 2015-12-23 v2

Abstract

r-Process nucleosynthesis in material ejected during neutron star mergers may lead to radioactively powered transients called kilonovae. The timescale and peak luminosity of these transients depend on the composition of the ejecta, which determines the local heating rate from nuclear decays and the opacity. Kasen et al. (2013, ApJ, 774, 25) and Tanaka & Hotokezaka (2013, ApJ, 775, 113) pointed out that lanthanides can drastically increase the opacity in these outflows. We use the new general-purpose nuclear reaction network SkyNet to carry out a parameter study of r-process nucleosynthesis for a range of initial electron fractions YeY_e, initial specific entropies ss, and expansion timescales τ\tau. We find that the ejecta is lanthanide-free for Ye0.220.30Y_e \gtrsim 0.22 - 0.30, depending on ss and τ\tau. The heating rate is insensitive to ss and τ\tau, but certain, larger values of YeY_e lead to reduced heating rates, due to individual nuclides dominating the heating. We calculate approximate light curves with a simplified gray radiative transport scheme. The light curves peak at about a day (week) in the lanthanide-free (-rich) cases. The heating rate does not change much as the ejecta becomes lanthanide-free with increasing YeY_e, but the light curve peak becomes about an order of magnitude brighter because it peaks much earlier when the heating rate is larger. We also provide parametric fits for the heating rates between 0.1 and 100days100\,\text{days}, and we provide a simple fit in YeY_e, ss, and τ\tau to estimate whether the ejecta is lanthanide-rich or not.

Keywords

Cite

@article{arxiv.1508.03133,
  title  = {r-Process Lanthanide Production and Heating Rates in Kilonovae},
  author = {Jonas Lippuner and Luke F. Roberts},
  journal= {arXiv preprint arXiv:1508.03133},
  year   = {2015}
}

Comments

19 pages, 9 figures

R2 v1 2026-06-22T10:32:43.984Z