Evidence for an accretion bridge in the DX Cha circumbinary system from VLTI/MATISSE observations
Abstract
DX Cha (HD 104237) is a spectroscopic binary consisting of a Herbig A7.5Ve-A8Ve primary star and a K3-type companion. Here we report on new micrometer interferometric observations of this source with the Multi Aperture Mid-Infrared Spectroscopic Experiment (MATISSE) at the Very Large Telescope Interferometer (VLTI). To model the four MATISSE observations obtained between 2020 and 2023, we constructed a time-dependent interferometric model of the system, using the oimodeler software. The model consists of an asymmetric ring and two point sources on a Keplerian orbit. Our best-fit model consists of a circumbinary ring with a diameter of au ( mas), featuring a strong azimuthal asymmetry. We found that the position angle of the asymmetry changes tens of degrees between the MATISSE epochs. The ring is relatively narrow, with a full width at half maximum (FWHM) of au ( mas). The presence of circumstellar dust emission so close to the binary is unexpected, as previous hydrodynamic simulations predicted an inner disk cavity with a diameter of au ( mas). Thus, we argue that the narrow envelope of material we detected is probably not a gravitationally stable circumbinary ring, but may be part of tidal accretion streamers channeling material from the inner edge of the disk toward the stars.
Cite
@article{arxiv.2502.11722,
title = {Evidence for an accretion bridge in the DX Cha circumbinary system from VLTI/MATISSE observations},
author = {Tímea Juhász and József Varga and Péter Ábrahám and Ágnes Kóspál and Foteini Lykou and Lei Chen and Attila Moór and Fernando Cruz-Sáenz de Miera and Bruno Lopez and Alexis Matter and Roy van Boekel and Michiel Hogerheijde and Margaux Abello and Jean-Charles Augereau and Paul Boley and William C. Danchi and Thomas Henning and Mathis Letessier and Jie Ma and Philippe Priolet and Marten Scheuck and Gerd Weigelt and Sebastian Wolf},
journal= {arXiv preprint arXiv:2502.11722},
year = {2025}
}
Comments
Accepted for publication in ApJ, 11 pages, 5 figures, 5 tables