A Framework for Linking Pre- and Post-Common Envelope Binary Properties with Star Clusters: The First Demonstration with a Massive White Dwarf+M Dwarf Binary in Alessi 12
Steffani M. Grondin, Maria R. Drout, Jason Nordhaus, Philip S. Muirhead, Bailey Filer, Alexander Laroche, Jeremy J. Webb, Floor S. Broekgaarden, Ryan Chornock, Kyle Kremer, Natalie LeBaron, Raffaella Margutti, Nikki Noughani, Huei Sears, Pier-Emmanuel Tremblay
astro-ph.SR, astro-ph.HE
Submitted: 2026-07-22
Comments: 31 pages, 11 figures, 4 tables. Submitted to ApJ
License: http://creativecommons.org/licenses/by/4.0/
The gist: Common envelope (CE) evolution is a critical phase in the lives of binary stars, producing close binaries that are progenitors of type Ia supernovae and gravitational wave sources.
Terminology
Abstract
Common envelope (CE) evolution is a critical phase in the lives of binary stars, producing close binaries that are progenitors of type Ia supernovae and gravitational wave sources. Despite its importance, CE evolution remains poorly understood, largely due to the scarcity of systems with constrained pre- and post-CE properties. Here, we present a star cluster-based framework for reconstructing the evolutionary histories of white dwarf+main-sequence (WD+MS) post-CE binaries, where cluster membership can provide an independent age constraint and/or rule out a merger origin for the WD. We demonstrate this method with Alessi12-PCE, the first such binary in an open cluster with precisely determined pre- and post-CE properties. We classify the companion as an M4V and measure a WD mass of 1.06 plus or minus 0.02 M, making it the most massive WD+MS binary associated with a cluster. A 6.99-hour periodicity detected in a light curve is confirmed as the binary orbital period via radial velocity monitoring. Combined with the WD mass, WD cooling age, and Alessi 12 cluster age, stellar evolution models imply a 5.40 plus or minus 0.10 M WD progenitor that entered a CE on the asymptotic giant branch (AGB). CE evolution models where convection is the dominant physical mechanism that sets alpha CE reproduce the observed orbital separation in exactly two scenarios: either a mid-AGB interaction with alpha CE about0.99, or a late-AGB interaction with alpha CE about0.05. Applicable to other post-CE binaries in star clusters, our new framework enables empirical constraints on CE physics inaccessible from field binaries alone.
Sources
- How Common Are Common Envelopes? Quantifying Their Role in Forming Gravitational-Wave Sources
- The Pan-STARRS1 Surveys
- The GALEX-Gaia-EDR3 Catalogue of Single and Binary White Dwarfs
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- Identification of 30,000 White Dwarf-Main Sequence binaries candidates from Gaia DR3 BP/RP(XP) low-resolution spectra
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- An observational overview of white dwarf stars
- Stellar mergers and common-envelope evolution
- Streamlining and standardizing software citations with The Software Citation Station
- Population demographics of white dwarf binaries with intermediate separations: Gaia constraints on post-AGB mass transfer
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