Protoplanetary disk cavities with JWST-MIRI: a dichotomy in molecular emission

Fuente: arXiv
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Autori principali: Mallaney, Patrick, Banzatti, Andrea, Salyk, Colette, Pascucci, Ilaria, Pinilla, Paola, Najita, Joan, Pontoppidan, Klaus M., Krijt, Sebastiaan, Blake, Geoffrey A., Tabone, Benoit, Kaeufer, Till, Zhang, Ke, Long, Feng, Huang, Jane, Rosotti, Giovanni, Oberg, Karin I., Colmenares, Maria Jose, Lay, Andrew, Cieza, Lucas A., Cleeves, L. Ilsedore, Williams, Joe, Xie, Chengyan, Vioque, Miguel, Narang, Mayank, Ballering, Nicholas P., Kim, Minjae, Collaboration, the JDISCS
Natura: Preprint
Pubblicazione: 2026
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author Mallaney, Patrick
Banzatti, Andrea
Salyk, Colette
Pascucci, Ilaria
Pinilla, Paola
Najita, Joan
Pontoppidan, Klaus M.
Krijt, Sebastiaan
Blake, Geoffrey A.
Tabone, Benoit
Kaeufer, Till
Zhang, Ke
Long, Feng
Huang, Jane
Rosotti, Giovanni
Oberg, Karin I.
Colmenares, Maria Jose
Lay, Andrew
Cieza, Lucas A.
Cleeves, L. Ilsedore
Williams, Joe
Xie, Chengyan
Vioque, Miguel
Narang, Mayank
Ballering, Nicholas P.
Kim, Minjae
Collaboration, the JDISCS
author_facet Mallaney, Patrick
Banzatti, Andrea
Salyk, Colette
Pascucci, Ilaria
Pinilla, Paola
Najita, Joan
Pontoppidan, Klaus M.
Krijt, Sebastiaan
Blake, Geoffrey A.
Tabone, Benoit
Kaeufer, Till
Zhang, Ke
Long, Feng
Huang, Jane
Rosotti, Giovanni
Oberg, Karin I.
Colmenares, Maria Jose
Lay, Andrew
Cieza, Lucas A.
Cleeves, L. Ilsedore
Williams, Joe
Xie, Chengyan
Vioque, Miguel
Narang, Mayank
Ballering, Nicholas P.
Kim, Minjae
Collaboration, the JDISCS
contents The evolution of planet-forming regions in protoplanetary disks is of fundamental importance to understanding planet formation. Disks with a central deficit in dust emission, a "cavity", have long attracted interest as potential evidence for advanced disk clearing by protoplanets and/or winds. Before JWST, infrared spectra showed that these disks typically lack the strong molecular emission observed in full disks. In this work, we combine a sample of 12 disks with millimeter cavities of a range of sizes ($\sim2$-70 au) and different levels of millimeter and infrared continuum deficits. We analyze their molecular spectra as observed with MIRI on JWST, homogeneously reduced with the new JDISCS pipeline. This analysis demonstrates a stark dichotomy in molecular emission where "molecule-rich" (MR) cavities follow global trends between water, CO, and OH luminosity and accretion luminosity as in full disks, while "molecule-poor" (MP) cavities are significantly sub-luminous in all molecules except sometimes OH. Disk cavities generally show sub-luminous organic emission, higher OH/H$_2$O ratios, and suggest a lower water column density. The sub-thermal excitation of CO and water vibrational lines suggests a decreased gas density in the emitting layer in all cavities, supporting model expectations for C$_2$H$_2$ photodissociation. We discover a bifurcation in infrared index (lower in MR cavities) suggesting that the molecular dichotomy is linked to residual $μ$m-size dust within millimeter disk cavities. Put together, these results suggest a feedback process between dust depletion, gas density decrease, and molecule dissociation. Disk cavities may have a common evolutionary sequence where MR switch into MP over time.
format Preprint
id arxiv_https___arxiv_org_abs_2601_02344
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Protoplanetary disk cavities with JWST-MIRI: a dichotomy in molecular emission
Mallaney, Patrick
Banzatti, Andrea
Salyk, Colette
Pascucci, Ilaria
Pinilla, Paola
Najita, Joan
Pontoppidan, Klaus M.
Krijt, Sebastiaan
Blake, Geoffrey A.
Tabone, Benoit
Kaeufer, Till
Zhang, Ke
Long, Feng
Huang, Jane
Rosotti, Giovanni
Oberg, Karin I.
Colmenares, Maria Jose
Lay, Andrew
Cieza, Lucas A.
Cleeves, L. Ilsedore
Williams, Joe
Xie, Chengyan
Vioque, Miguel
Narang, Mayank
Ballering, Nicholas P.
Kim, Minjae
Collaboration, the JDISCS
Earth and Planetary Astrophysics
The evolution of planet-forming regions in protoplanetary disks is of fundamental importance to understanding planet formation. Disks with a central deficit in dust emission, a "cavity", have long attracted interest as potential evidence for advanced disk clearing by protoplanets and/or winds. Before JWST, infrared spectra showed that these disks typically lack the strong molecular emission observed in full disks. In this work, we combine a sample of 12 disks with millimeter cavities of a range of sizes ($\sim2$-70 au) and different levels of millimeter and infrared continuum deficits. We analyze their molecular spectra as observed with MIRI on JWST, homogeneously reduced with the new JDISCS pipeline. This analysis demonstrates a stark dichotomy in molecular emission where "molecule-rich" (MR) cavities follow global trends between water, CO, and OH luminosity and accretion luminosity as in full disks, while "molecule-poor" (MP) cavities are significantly sub-luminous in all molecules except sometimes OH. Disk cavities generally show sub-luminous organic emission, higher OH/H$_2$O ratios, and suggest a lower water column density. The sub-thermal excitation of CO and water vibrational lines suggests a decreased gas density in the emitting layer in all cavities, supporting model expectations for C$_2$H$_2$ photodissociation. We discover a bifurcation in infrared index (lower in MR cavities) suggesting that the molecular dichotomy is linked to residual $μ$m-size dust within millimeter disk cavities. Put together, these results suggest a feedback process between dust depletion, gas density decrease, and molecule dissociation. Disk cavities may have a common evolutionary sequence where MR switch into MP over time.
title Protoplanetary disk cavities with JWST-MIRI: a dichotomy in molecular emission
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2601.02344