Repository logo
Log In(current)
  • Inicio
  • Personal de Investigación
  • Unidad Académica
  • Publicaciones
  • Colecciones
    Datos de Investigacion Divulgacion cientifica Personal de Investigacion Protecciones Proyectos Externos Proyectos Internos Publicaciones Tesis
  1. Home
  2. Universidad de Santiago de Chile
  3. Publicaciones ANID
  4. The Alma Survey of Gas Evolution of Protoplanetary Disks (Age-Pro). Xi. Beam-Corrected Gas Disk Sizes from Fitting 12co Moment Zero Maps
Details

The Alma Survey of Gas Evolution of Protoplanetary Disks (Age-Pro). Xi. Beam-Corrected Gas Disk Sizes from Fitting 12co Moment Zero Maps

Journal
Astrophysical Journal
ISSN
0004-637X
Date Issued
2025
Author(s)
Miley, J  
Gonzalez-Ruilova, C  
Abstract
The inward drift of millimeter-centimeter sized pebbles in protoplanetary disks has become an important part of our current theories of planet formation and, more recently, planet composition as well. The gas-to-dust size ratio of protoplanetary disks can provide an important constraint on how pebbles have drifted inward, provided that observational effects, especially resolution, can be accounted for. Here we present a method for fitting beam-convolved models to integrated intensity maps of line emission using the astropy Python package and use it to fit 12CO moment zero maps of 10 Lupus and 10 Upper Scorpius protoplanetary disks from the ALMA Survey of Gas Evolution of PROtoplanetary Disks (AGE-PRO) Program, a sample of disks around M3-K6 stars that cover the ∼1-6 Myr of gas disk evolution. From the unconvolved best fit models, we measure the gas disk size (R<inf>CO,90%</inf>model), which we combine with the dust disk size (R<inf>dust,90%</inf>FRANK) from continuum visibility fits from M. Vioque et al. to compute beam-corrected gas-to-dust size ratios. In our sample, we find gas-to-dust size ratios between ∼1 and ∼5.5, with a median value of 2.78<inf>−0.32</inf>+0.37. Contrary to models of dust evolution that predict an increasing size ratio with time, we find that the younger disks in Lupus have similar (or even larger) median ratios (3.02<inf>−0.33</inf>+0.33) than the older disks in Upper Sco (2.46<inf>−0.38</inf>+0.53). A possible explanation for this discrepancy is that pebble drift is halted in dust traps combined with truncation of the gas disk by external photoevaporation in Upper Sco, although survivorship bias could also play a role. © 2025. The Author(s). Published by the American Astronomical Society.
Get Involved!
  • Source Code
  • Documentation
  • Slack Channel
Make it your own

DSpace-CRIS can be extensively configured to meet your needs. Decide which information need to be collected and available with fine-grained security. Start updating the theme to match your Institution's web identity.

Need professional help?

The original creators of DSpace-CRIS at 4Science can take your project to the next level, get in touch!

Logo USACH

Universidad de Santiago de Chile
Avenida Libertador Bernardo O'Higgins nº 3363. Estación Central. Santiago Chile.
ciencia.abierta@usach.cl © 2023
The DSpace CRIS Project - Modificado por VRIIC USACH.

  • Accessibility settings
  • Privacy policy
  • End User Agreement
  • Send Feedback
Logo DSpace-CRIS
Repository logo COAR Notify