English

Cygnus X-2, super-Eddington mass transfer, and pulsar binaries

Astrophysics 2009-10-31 v2

Abstract

We consider the unusual evolutionary state of the secondary star in Cygnus X-2. Spectroscopic data give a low mass (M20.50.7\msunM_2 \simeq 0.5 - 0.7\msun) and yet a large radius (R27\rsunR_2 \simeq 7\rsun) and high luminosity (L2150\lsunL_2 \simeq 150\lsun). We show that this star closely resembles a remnant of early massive Case B evolution, during which the neutron star ejected most of the 3\msun\sim 3\msun transferred from the donor (initial mass M2i3.6\msunM_{\rm 2i}\sim 3.6\msun) on its thermal time-scale 106\sim 10^6 yr. As the system is far too wide to result from common-envelope evolution, this strongly supports the idea that a neutron star efficiently ejects the excess inflow during super--Eddington mass transfer. Cygnus X-2 is unusual in having had an initial mass ratio qi=M2i/M1q_{\rm i} = M_{\rm 2i}/M_1 in a narrow critical range near qi2.6q_{\rm i}\simeq 2.6. Smaller qiq_{\rm i} lead to long-period systems with the former donor near the Hayashi line, and larger qiq_{\rm i} to pulsar binaries with shorter periods and relatively massive white dwarf companions. The latter naturally explain the surprisingly large companion masses in several millisecond pulsar binaries. Systems like Cygnus X-2 may thus be an important channel for forming pulsar binaries.

Keywords

Cite

@article{arxiv.astro-ph/9812343,
  title  = {Cygnus X-2, super-Eddington mass transfer, and pulsar binaries},
  author = {A. R. King and H. Ritter},
  journal= {arXiv preprint arXiv:astro-ph/9812343},
  year   = {2009}
}

Comments

9 pages, 4 encapsulated figures, LaTeX, revised version with a few typos corrected and an appendix added, accepted by MNRAS