English

Merger Precursor: Year-long Transients Preceding Mergers of Low-mass Stripped Stars with Compact Objects

High Energy Astrophysical Phenomena 2024-11-12 v3 Solar and Stellar Astrophysics

Abstract

Binary mass transfer can occur at high rates due to rapid expansion of the donor's envelope. In the case where mass transfer is unstable, the binary can rapidly shrink its orbit and lead to a merger. In this work we consider the appearance of the system preceding merger, specifically for the case of a low-mass (2.5\approx 2.5-3 M3~M_\odot) helium star with a neutron star (NS) companion. Modeling the mass transfer history as well as the wind launched by super-Eddington accretion onto the NS, we find that such systems can power slowly rising transients with timescales as long as years, and luminosities of 1040\sim 10^{40}-104110^{41} erg s1^{-1} from optical to UV. The final explosion following the merger (or core-collapse of the helium star in some cases) leads to an interaction-powered transient with properties resembling Type Ibn supernovae (SNe), possibly with a bright early peak powered by shock cooling emission for merger-powered explosions. We apply our model to the Type Ibn SN 2023fyq, that displayed a long-term precursor activity from years before the terminal explosion.

Keywords

Cite

@article{arxiv.2406.12472,
  title  = {Merger Precursor: Year-long Transients Preceding Mergers of Low-mass Stripped Stars with Compact Objects},
  author = {Daichi Tsuna and Samantha C. Wu and Jim Fuller and Yize Dong and Anthony L. Piro},
  journal= {arXiv preprint arXiv:2406.12472},
  year   = {2024}
}

Comments

Accepted to the Open Journal of Astrophysics. A typographic error in equation 34 has been corrected, and correspondingly Figure 5 has been slightly updated (other results are unaffected). Light curve source code available here: https://github.com/DTsuna/merger_precursor.git