HO in the terrestrial planet-forming regions of protoplanetary disks
arXiv:2601.20096 · doi:10.3847/1538-4357/ae3db1
Abstract
Isotopologues play an important role in solar system cosmochemistry studies, revealing details of early planet formation physics and chemistry. Oxygen isotopes, as measured in solar system materials, reveal evidence for both mass-dependent fractionation processes and a mass-independent process commonly attributed to isotope-selective photodissociation of CO in the solar nebula. The sensitivity of JWST's MIRI-MRS enables studies of isotopologues in the terrestrial planet-forming regions around nearby young stars. We report here on a search for HO in 22 disks from the JDISC Survey with evidence for substantial water vapor reservoirs, with the goal of measuring HO/HO ratios, and potentially revealing the predicted enhancement of HO caused by isotope-selective photodissociation. We find marginal detections of HO in six disks, and a more significant detection of HO in the disk around WSB 52. Modeling of the detected HO lines assuming an ISM ratio of HO/HO predicts HO features consistent with observations for four of the modeled disks, but stronger HO features than are observed in three of the modeled disks, which includes WSB 52. Therefore, these latter three disks require a higher HO/HO ratio than the ISM in the water-emitting region, in contrast to long-standing theoretical expectations. We suggest that either the HO-rich water has been removed from the emitting region and replaced by HO-poor water formed by reactions with O-poor CO, or that the gas-phase water is depleted in O via mass-dependent fractionation processes at the water snowline.
20 pages, 11 figures