Binarity at LOw Metallicity (BLOeM): massive star variability revealed using a novel software tool for point-spread function fitting of TESS images

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Main Authors: Van Daele, Pieterjan J., Bowman, Dominic M., Ovadia, Roey, Katabi, Zehava, Bodensteiner, Julia, Shenar, Tomer, Langer, Norbert, Henneco, Jan, Kalita, Ankur, Crowther, Paul A., Gull, Maude, Mahy, Laurent, Patrick, Lee, Pauli, Daniel, Pawlak, Michał
Format: Preprint
Published: 2026
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author Van Daele, Pieterjan J.
Bowman, Dominic M.
Ovadia, Roey
Katabi, Zehava
Bodensteiner, Julia
Shenar, Tomer
Langer, Norbert
Henneco, Jan
Kalita, Ankur
Crowther, Paul A.
Gull, Maude
Mahy, Laurent
Patrick, Lee
Pauli, Daniel
Pawlak, Michał
author_facet Van Daele, Pieterjan J.
Bowman, Dominic M.
Ovadia, Roey
Katabi, Zehava
Bodensteiner, Julia
Shenar, Tomer
Langer, Norbert
Henneco, Jan
Kalita, Ankur
Crowther, Paul A.
Gull, Maude
Mahy, Laurent
Patrick, Lee
Pauli, Daniel
Pawlak, Michał
contents Massive stars, the progenitors of neutron stars and black holes, play a crucial role in shaping the chemical and radiative properties of entire galaxies through their winds and explosive deaths. Stellar pulsations are a common phenomenon in massive stars and asteroseismology -- the study of such pulsations -- provides crucial constraints on the physics of massive star interiors. The excitation of heat-driven pulsations in massive stars is expected to depend on a star's metallicity, but this remains largely uncalibrated in evolution models due to a lack of a sufficient observations. While TESS has dramatically improved the statistics for Galactic massive stars, obtaining TESS light curves for low-metallicity massive stars beyond the Milky Way is challenging, due to their faintness and heavy crowding. In this paper, we present a novel point-spread function (PSF) based light curve extraction method called {\sc Lemons}, which overcomes these challenges. We also demonstrate the limitations of the often-used simple aperture photometry (SAP) method that can provide heavily contaminated light curves. With this new technique, accurate light curves of 91 SMC massive stars in the BLOeM sample are extracted. They reveal a variety of variability types including indications of binarity (e.g. eclipses and ellipsoidal modulation) and stellar pulsations. They also enable us to investigate stochastic low-frequency (SLF) variability for massive stars in the SMC. Furthermore we demonstrate how the morphology of SLF variability probes a star's location in the Hertzsprung--Russell diagram, which appears similar to Galactic massive stars thus indicating that the underlying physical mechanism could be insensitive to metallicity.
format Preprint
id arxiv_https___arxiv_org_abs_2605_15757
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Binarity at LOw Metallicity (BLOeM): massive star variability revealed using a novel software tool for point-spread function fitting of TESS images
Van Daele, Pieterjan J.
Bowman, Dominic M.
Ovadia, Roey
Katabi, Zehava
Bodensteiner, Julia
Shenar, Tomer
Langer, Norbert
Henneco, Jan
Kalita, Ankur
Crowther, Paul A.
Gull, Maude
Mahy, Laurent
Patrick, Lee
Pauli, Daniel
Pawlak, Michał
Solar and Stellar Astrophysics
Massive stars, the progenitors of neutron stars and black holes, play a crucial role in shaping the chemical and radiative properties of entire galaxies through their winds and explosive deaths. Stellar pulsations are a common phenomenon in massive stars and asteroseismology -- the study of such pulsations -- provides crucial constraints on the physics of massive star interiors. The excitation of heat-driven pulsations in massive stars is expected to depend on a star's metallicity, but this remains largely uncalibrated in evolution models due to a lack of a sufficient observations. While TESS has dramatically improved the statistics for Galactic massive stars, obtaining TESS light curves for low-metallicity massive stars beyond the Milky Way is challenging, due to their faintness and heavy crowding. In this paper, we present a novel point-spread function (PSF) based light curve extraction method called {\sc Lemons}, which overcomes these challenges. We also demonstrate the limitations of the often-used simple aperture photometry (SAP) method that can provide heavily contaminated light curves. With this new technique, accurate light curves of 91 SMC massive stars in the BLOeM sample are extracted. They reveal a variety of variability types including indications of binarity (e.g. eclipses and ellipsoidal modulation) and stellar pulsations. They also enable us to investigate stochastic low-frequency (SLF) variability for massive stars in the SMC. Furthermore we demonstrate how the morphology of SLF variability probes a star's location in the Hertzsprung--Russell diagram, which appears similar to Galactic massive stars thus indicating that the underlying physical mechanism could be insensitive to metallicity.
title Binarity at LOw Metallicity (BLOeM): massive star variability revealed using a novel software tool for point-spread function fitting of TESS images
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2605.15757