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A Galactic intermediate-mass stripped star with a Wolf-Rayet-like wind

Authors: Johanna M\"uller-Horn, Kareem El-Badry, Andreas A. C. Sander, Hans-Walter Rix, Lisa Blomberg, J. J. Hermes, Pranav Nagarajan, Sahar Shahaf, Harim Jin, Dominick M. Rowan, Debasish Dutta, Jos\'e G. Fern\'andez-Trincado, Ylva G\"otberg, Ilya Ilyin, Tom Maccarone, Jos\'e Eduardo M\'endez Delgado, Guy S. Stringfellow, Andrew Tkachenko, Jaime I. Villase\~nor, Eleonora ZariPublished: 2026-08-05Paper ID: 2608.05276Category: astro-ph.SRLicense: CC BY 4.0

Abstract

Binary interaction in massive stars is expected to produce a large population of intermediate-mass ($2$-$8$ M$_\odot$) envelope-stripped stars, yet such objects have remained elusive in the Milky Way. We report the identification of an unambiguous Galactic example in a short-period ($P=5.94$ d), double-lined spectroscopic binary, discovered in the SDSS-V Milky Way Mapper survey. The system consists of a rapidly rotating O-type star and a hotter, lower-mass companion, which shows He II and N IV emission lines with large radial velocity variations, revealing its binary nature. Combined orbital constraints and joint spectroscopic and photometric modelling show that the companion is a hot ($T_\ast \approx 60$ kK), helium-rich star with a mass of $3.2$-$5.8$ M$_\odot$, placing it squarely in the intermediate-mass regime and below values typically inferred for classical Wolf-Rayet (WR) stars. The system's short period, negligible eccentricity, and rapidly rotating O-star point to a post-interaction configuration following efficient mass transfer and spin-up of the accretor. Comparison with binary evolution models suggests that the stripped star is observed in a brief inflated phase following mass transfer, which increases its optical flux contribution and facilitates its detection. The inferred mass-loss rate $\log \dot{M} = -6.3 \pm 0.1$ is in line with mass-loss rates observed for classical WR stars in the Milky Way and exceeds those measured for intermediate-mass stripped stars in the Magellanic Clouds, with the caveat that our target selection is biased towards systems with stronger emission features. As an unambiguous and well-characterised intermediate-mass stripped star, this system provides a key benchmark for models of binary evolution at solar metallicity, stripped-envelope supernova progenitors, and the formation of compact-object binaries.

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