Stellar black hole binaries from two common envelope evolution phases in triple stellar systems
Technion, Israel · Technion, Israel
astro-ph.HE
Submitted: 2026-06-25
Updated: 2026-09-06
Comments: It will be submitted in two days to allow for comments (including missing references)
License: http://creativecommons.org/licenses/by/4.0/
The gist: We propose a triple-star evolutionary channel involving two common envelope evolution (CEE) phases to form close binary black hole (BBH) systems with an average positive effective inspiral spin chi
Terminology
Abstract
We propose a triple-star evolutionary channel involving two common envelope evolution (CEE) phases to form close binary black hole (BBH) systems with an average positive effective inspiral spin chi eff and a tail of systems having chi eff<0, as observed by gravitational wave detectors. chi eff is the mass-weighted spin of the two merging BHs, and a positive (negative) value is for an effective spin along (opposite) the orbital angular momentum. The first BH progenitor engulfs a low-mass star during the post-main-sequence evolution. The tertiary star spirals in and spins up the core, which forms the first BH at the first core-collapse supernova (CCSN) explosion. Its spin is along the orbital angular momentum of the inner binary, which can be highly inclined to the outer binary angular momentum. The secondary star later engulfs the BH in a second CEE phase and explodes as a CCSN to form the second BH with a spin that is more aligned with the orbital angular momentum of the two BHs. We use empirically calibrated initial distributions of triple-star systems consisting of two massive stars and impose a hierarchical stability criterion. We compare the predicted ratio of merging BBHs to CCSN explosion rates and find it is up to a factor of 2 larger than the observed rate. This channel can significantly contribute to the population of observed merging BBHs and can explain their qualitative spin distribution.
Sources
- The Formation and Evolution of Multiple Star Systems
- How Common Are Common Envelopes? Quantifying Their Role in Forming Gravitational-Wave Sources
- Gravitational-Wave Signatures of Highly Eccentric Stellar Binary Black-Holes in Galactic Nuclei
- Modern tidal interaction models for rapid binary population synthesis: II. Binary black hole formation, mergers, and spins
- Getting Tilted: Random Walk of Binary Black Hole Spin-Orbit Alignment in Dense Star Clusters
- The First Detection of Sub-Populations in the Delay-Time Distribution of Binary Black Holes in GWTC-4 of LIGO-Virgo-KAGRA
- BBH-Genesis: Disentangling Binary Black Hole Formation Channels with GWTC-4
- Unraveling the Origin of Unequal Mass Gravitational Wave Events: Insights from a Galactic High Mass X-ray Binary
- The failed failed-supernova scenario of M31-2014-DS1
- GWTC-5.0: Population Properties of Merging Compact Binaries
- GWTC-4.0: Population Properties of Merging Compact Binaries
- AGN-driven BBH mergers: Black hole populations and hierarchical growth across the AGN parameter space
- Reassessing the Spin of Second-born Black Holes in Coalescing Binary Black Holes and Its Connection to the chi_eff-q Correlation
- Good things always come in 3s: trimodality in the binary black-hole chirp-mass distribution supports bimodal black-hole formation
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