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arXiv · 2606.23794

MINDS: Complementary inclinations in the binary system HK Tau reveal gas- and ice-phase chemistry

Abstract

[Abridged] HK Tau is a roughly equal mass pre-main sequence binary system consisting of a low-inclination primary (57 deg) and an edge-on (83 deg) secondary. We present JWST/MIRI observations targeting both sources, taken as part of the JWST GTO program MINDS. The spectra reveal a line-rich, CO2-dominated primary and a line-poor secondary; this evidence, albeit in line with the evolutionary-motivated trend uncovered by recent observations of binaries at MIRI wavelengths, is likely due to the different configuration of the two sources. Indeed, thermochemical disc models coupled with radiative transfer show that, at inclinations comparable to that of HK Tau B, only ionised atomic lines are expected to remain visible in the spectra. While blocking molecular emission lines, however, the edge-on configuration allows ice absorption bands to be visible against the continuum; in this framework, the HK Tau system provides an unprecedented opportunity to have a simultaneous view of the solid and gaseous component of a pair of coeval protoplanetary discs, thanks to the complementary inclination of the two sources. We detect water ice at 6.2 and 13.6um, CO2 ice at 15.2um, and NH4+ ice at 6.85um in the spectrum of HK Tau B; an additional absorption band between 8.3 and 9um is compatible with both silicate stretching and C-H bending. Neither of the two sources show signs of PAHs. Extended H2 emission is present around both discs, although much more elongated in HK Tau B. The distinctive 'X' shape centred in B, combined with the intensity, morphology, and spectral characteristics of the ionised atomic lines [Ar II], [Ne II], and [Ne III] suggests a low-velocity wind origin with a wide (~ 70 deg) semi-opening angle. The lower forbidden line fluxes and smaller extent of the H2 emission around A imply that, if a wind is launched from the primary as well, it is too cold or dense to be ionised.

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Alice Somigliana, Giulia Perotti, Nicolás T. Kurtovic, Thomas Henning, Myriam Benisty, Andrew D. Sellek, Melissa McClure, Zak L. Smith, Aditya M. Arabhavi, Alessio Caratti o Garatti, Valentin Christiaens, Ewine F. van Dishoeck, Danny Gasman, Sierra L. Grant, Manuel Güdel, Till Kaeufer, Inga Kamp, Lucas Stapper, Benoît Tabone, Milou Temmink, Marissa Vlasblom. 2026-06-22. MINDS: Complementary inclinations in the binary system HK Tau reveal gas- and ice-phase chemistry. https://arxiv.org/abs/2606.23794

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