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Opacities of singly and doubly ionized neodymium and uranium for kilonova emission modeling

Andreas FlörsGSI Helmholtzzentrum für Schwerionenforschung , Planckstraße 1, D-64291 Darmstadt , GermanyRicardo Ferreira da SilvaFaculdade de Ciências da Universidade de Lisboa , Rua Ernesto de Vasconcelos, Edifício C8, 1749-016, Lisboa , PortugalJ. DeprinceInstitut d’Astronomie et d’Astrophysique , CP-226, Université Libre de Bruxelles, B-1050 Brussels , BelgiumHelena Carvajal GallegoPhysique Atomique et Astrophysique , Université de Mons, B-7000 Mons , BelgiumGerrit LeckGSI Helmholtzzentrum für Schwerionenforschung , Planckstraße 1, D-64291 Darmstadt , GermanyLuke J. ShinglesGSI Helmholtzzentrum für Schwerionenforschung , Planckstraße 1, D-64291 Darmstadt , GermanyG. Martı́nez-PinedoGSI Helmholtzzentrum für Schwerionenforschung , Planckstraße 1, D-64291 Darmstadt , GermanyJ.M. SampaioFaculdade de Ciências da Universidade de Lisboa , Rua Ernesto de Vasconcelos, Edifício C8, 1749-016, Lisboa , PortugalPedro AmaroLaboratory for Instrumentation, Biomedical Engineering and Radiation Physics (LIBPhys-UNL), Department of Physics, NOVA School of Science and Technology, NOVA University Lisbon , 2829-516 Caparica , PortugalJ. P. MarquesFaculdade de Ciências da Universidade de Lisboa , Rua Ernesto de Vasconcelos, Edifício C8, 1749-016, Lisboa , PortugalS. GorielyInstitut d’Astronomie et d’Astrophysique , CP-226, Université Libre de Bruxelles, B-1050 Brussels , BelgiumP. QuinetIPNAS, Université de Liège , B-4000 Liège , BelgiumP. PalmeriPhysique Atomique et Astrophysique , Université de Mons, B-7000 Mons , BelgiumMichel GodefroidSpectroscopy, Quantum Chemistry and Atmospheric Remote Sensing , CP160/09, Université Libre de Bruxelles, B-1050 Brussels , Belgium
2023en
ABI

Аннотация

ABSTRACT Even though the electromagnetic counterpart AT2017gfo to the binary neutron star merger GW170817 is powered by the radioactive decay of r-process nuclei, only few tentative identifications of light r-process elements have been made so far. One of the major limitations for the identification of heavy nuclei is incomplete or missing atomic data. While substantial progress has been made on lanthanide atomic data over the last few years, for actinides there has been less emphasis, with the first complete set of opacity data only recently published. We perform atomic structure calculations of neodymium (Z = 60) as well as the corresponding actinide uranium (Z = 92). Using two different codes [flexible atomic code (fac) and hartree–fock-relativistic (hfr)] for the calculation of the atomic data, we investigate the accuracy of the calculated data (energy levels and electric dipole transitions) and their effect on kilonova opacities. For the fac calculations, we optimize the local central potential and the number of included configurations and use a dedicated calibration technique to improve the agreement between theoretical and available experimental atomic energy levels (AELs). For ions with vast amounts of experimental data available, the presented opacities agree quite well with previous estimations. On the other hand, the optimization and calibration method cannot be used for ions with only few available AELs. For these cases, where no experimental nor benchmarked calculations are available, a large spread in the opacities estimated from the atomic data obtained with the various atomic structure codes is observed. We find that the opacity of uranium is almost double the neodymium opacity.

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