The evolutionary route to form planetary nebulae with central neutron star - white dwarf binary systems
Abstract
We present a possible evolutionary pathway to form planetary nebulae (PNe) with close neutron star (NS)-white dwarf (WD) binary central stars. By employing a comprehensive binary population synthesis technique we find that the evolution involves two common envelope evolution (CEE) phases and a core collapse supernova explosion between them that forms the NS. Later the lower mass star engulfs the NS as it becomes a red giant, a process that leads to the second CEE phase and to the ejection of the envelope. This leaves a hot horizontal branch star that evolves to become a helium WD and an expanding nebula. Both the WD and the NS power the nebula. The NS in addition might power a pulsar wind nebula inside the expanding PN. From our simulations we find that the Galactic formation rate of NS-WD PNe is while the Galactic formation rate of all PNe is . There is a possibility that one of the observed Galactic PNe might be a NS-WD PN, and a few NS-WD PNe might exist in the Galaxy. The central binary systems might be sources for future gravitational wave detectors like LISA, and possibly of electromagnetic telescopes.
Cite
@article{arxiv.2304.08827,
title = {The evolutionary route to form planetary nebulae with central neutron star - white dwarf binary systems},
author = {Iminhaji Ablimit and Noam Soker},
journal= {arXiv preprint arXiv:2304.08827},
year = {2023}
}
Comments
significantly revised (especially the discussion in the Results section), accepted for the publication in MNRAS; 8 pages, 4 figures, one appendix with 3 tables