Triple Evolution Pathways to Black Hole Low-Mass X-ray Binaries: Insights from V404 Cygni

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Hauptverfasser: Shariat, Cheyanne, Naoz, Smadar, El-Badry, Kareem, Rocha, Kyle Akira, Kalogera, Vicky, Stephan, Alexander P., Burdge, Kevin B., Angelo, Isabel
Format: Preprint
Veröffentlicht: 2024
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author Shariat, Cheyanne
Naoz, Smadar
El-Badry, Kareem
Rocha, Kyle Akira
Kalogera, Vicky
Stephan, Alexander P.
Burdge, Kevin B.
Angelo, Isabel
author_facet Shariat, Cheyanne
Naoz, Smadar
El-Badry, Kareem
Rocha, Kyle Akira
Kalogera, Vicky
Stephan, Alexander P.
Burdge, Kevin B.
Angelo, Isabel
contents A recent discovery shows that V404 Cygni, a prototypical black hole low-mass X-ray binary (BH-LMXB) is a hierarchical triple: the BH and donor star are orbited by a $1.2$ M$_{\odot}$ tertiary at a distance of at least $3500$ au. Motivated by this system, we evolve a grid of $\sim50,000$ triple star systems, spanning a broad range of initial orbits. Our calculations employ {\tt MESA} stellar evolution models, using {\tt POSYDON}, and self-consistently track the effects of eccentric Kozai-Lidov (EKL) oscillations, mass loss, tides, and BH natal kicks. In our simulations, the progenitors of V404 Cygni-like systems have initial outer separations of $1000 - 10000$ au and inner separations of $\sim100$ au, such that they avoid Roche lobe overflow most of the time. Later on, EKL oscillations drive the inner binary to high eccentricities until tides shrink the orbit and mass transfer begins. Notably, such systems only form in simulations with very weak black hole natal kicks ($\lesssim 5\,{\rm km\,s^{-1}}$) because stronger kicks unbind the tertiaries. Our simulations also predict a population of BH-LMXB triples that form via the classical common-envelope channel, when the BH progenitor does overflow its Roche lobe. The formation rate for this channel is also higher in triples than in isolated binaries because early EKL oscillations cause inner binaries with a wider range of initial separations to enter and survive a common envelope. Our calculations demonstrate that at least some stellar BHs form with extremely weak kicks, and that triple evolution is a significant formation channel for BH-LMXBs.
format Preprint
id arxiv_https___arxiv_org_abs_2411_15644
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Triple Evolution Pathways to Black Hole Low-Mass X-ray Binaries: Insights from V404 Cygni
Shariat, Cheyanne
Naoz, Smadar
El-Badry, Kareem
Rocha, Kyle Akira
Kalogera, Vicky
Stephan, Alexander P.
Burdge, Kevin B.
Angelo, Isabel
Solar and Stellar Astrophysics
High Energy Astrophysical Phenomena
A recent discovery shows that V404 Cygni, a prototypical black hole low-mass X-ray binary (BH-LMXB) is a hierarchical triple: the BH and donor star are orbited by a $1.2$ M$_{\odot}$ tertiary at a distance of at least $3500$ au. Motivated by this system, we evolve a grid of $\sim50,000$ triple star systems, spanning a broad range of initial orbits. Our calculations employ {\tt MESA} stellar evolution models, using {\tt POSYDON}, and self-consistently track the effects of eccentric Kozai-Lidov (EKL) oscillations, mass loss, tides, and BH natal kicks. In our simulations, the progenitors of V404 Cygni-like systems have initial outer separations of $1000 - 10000$ au and inner separations of $\sim100$ au, such that they avoid Roche lobe overflow most of the time. Later on, EKL oscillations drive the inner binary to high eccentricities until tides shrink the orbit and mass transfer begins. Notably, such systems only form in simulations with very weak black hole natal kicks ($\lesssim 5\,{\rm km\,s^{-1}}$) because stronger kicks unbind the tertiaries. Our simulations also predict a population of BH-LMXB triples that form via the classical common-envelope channel, when the BH progenitor does overflow its Roche lobe. The formation rate for this channel is also higher in triples than in isolated binaries because early EKL oscillations cause inner binaries with a wider range of initial separations to enter and survive a common envelope. Our calculations demonstrate that at least some stellar BHs form with extremely weak kicks, and that triple evolution is a significant formation channel for BH-LMXBs.
title Triple Evolution Pathways to Black Hole Low-Mass X-ray Binaries: Insights from V404 Cygni
topic Solar and Stellar Astrophysics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2411.15644