paper

MINDS. Water reservoirs of compact planet-forming dust disk: A diversity of HO distributions

arXiv:2505.15237

Abstract

Millimetre-compact dust disks are thought to have efficient radial drift of icy dust pebbles, which has been hypothesised to produce an enhanced cold (400 K) HO reservoir in their inner disks. Mid-infrared spectral surveys, now with the James Webb Space Telescope (JWST), pave the way to explore this hypothesis. In this work, we test this theory for 8 compact disks (60 au) with JWST-MIRI/MRS observations. We analyse the different reservoirs that can be probed with the pure rotational lines (10 m) through parametric column density profiles, multiple component slab models, and line flux ratios. We find that not all compact disks show strong enhancements of the cold HO reservoir, instead we propose three different classes of inner disk HO distributions. Four of our disks appear to have similar HO distributions as many of the large and structured disks (Type N or ``Normal'' disks), as is indicated by the slab model fitting and the line flux ratios. These disks have a small cold reservoir, suggesting the inward drift of dust, but it is not as efficient as hypothesised before. Only two disks do show a strong enhancement of the cold HO emission (Type E or cold HO enhanced disks), agreeing with the original hypothesis. The two remaining disks are found to be very HO-poor (Type P or HO-poor disks), yet show emission from either the hot or immediate reservoirs (depending on the fit) in addition to emission from the cold one. We find that different parametrisations are able to provide a good description of the observed HO spectra, with the multiple component analysis yielding similar results. Finally, we also report the detection of other molecules in these disks, including a tentative detection of CH in CY Tau.

Accepted for publication in A&A on 20/05/2025; 34 pages, 20 figures, 10 tables