Inferring Neutron Star Merger Ejecta Morphology with Kilonovae

Publication date

2025-10

Authors

King, Brendan L.
De, Soumi
Korobkin, Oleg
Coughlin, Michael W.
Pang, Peter T.H.ISNI 0000000512566404
Strother, Terrance T.

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

In this study we incorporate a new grid of kilonova simulations produced by the Monte Carlo radiative transfer code SuperNu in an inference pipeline for astrophysical transients and evaluate their performance. These simulations contain four different two-component ejecta morphology classes. We analyze follow-up observational strategies by Vera Rubin Observatory in optical and James Webb Space Telescope (JWST) in mid-infrared (MIR). Our analysis suggests that, within these strategies, it is possible to discriminate between the four different morphologies only when late-time JWST observations in MIR are available. We conclude that follow-ups by the new Vera Rubin Observatory alone are not sufficient to determine ejecta morphology. Additionally, we make comparisons between surrogate models based on radiative transfer simulation grids by SuperNu and POSSIS, by analyzing the historic kilonova AT2017gfo that accompanied the gravitational wave event GW170817. We show that both SuperNu and POSSIS models provide similar fits to photometric observations but their qualitative interpretations differ.

Keywords

Neutron stars (1108), R-process (1324), Radiative transfer simulations (1967), Support vector machine (1936), Transient detection (1957), Astronomy and Astrophysics, Space and Planetary Science

Citation

King, B L, De, S, Korobkin, O, Coughlin, M W, Pang, P T H & Strother, T T 2025, 'Inferring Neutron Star Merger Ejecta Morphology with Kilonovae', Publications of the Astronomical Society of the Pacific, vol. 137, no. 10, 104507. https://doi.org/10.1088/1538-3873/ae10df