Published May 20, 2018 | Version Published + Accepted Version
Journal Article Open

Homogeneous Analysis of the Dust Morphology of Transition Disks Observed with ALMA: Investigating Dust Trapping and the Origin of the Cavities

  • 1. ROR icon University of Arizona
  • 2. ROR icon University of Cambridge
  • 3. ROR icon Autonomous University of Madrid
  • 4. ROR icon European Southern Observatory
  • 5. ROR icon Institut de Planétologie et d'Astrophysique de Grenoble
  • 6. ROR icon California Institute of Technology
  • 7. ROR icon European Space Astronomy Centre
  • 8. ROR icon University of Illinois Urbana-Champaign
  • 9. ROR icon University of Chile
  • 10. ROR icon National Research Council Canada

Abstract

We analyze the dust morphology of 29 transition disks (TDs) observed with Atacama Large (sub-)Millimeter Array (ALMA) at (sub-)millimeter emission. We perform the analysis in the visibility plane to characterize the total flux, cavity size, and shape of the ring-like structure. First, we found that the M_(dust)–M⋆ relation is much flatter for TDs than the observed trends from samples of class II sources in different star-forming regions. This relation demonstrates that cavities open in high (dust) mass disks, independent of the stellar mass. The flatness of this relation contradicts the idea that TDs are a more evolved set of disks. Two potential reasons (not mutually exclusive) may explain this flat relation: the emission is optically thick or/and millimeter-sized particles are trapped in a pressure bump. Second, we discuss our results of the cavity size and ring width in the context of different physical processes for cavity formation. Photoevaporation is an unlikely leading mechanism for the origin of the cavity of any of the targets in the sample. Embedded giant planets or dead zones remain as potential explanations. Although both models predict correlations between the cavity size and the ring shape for different stellar and disk properties, we demonstrate that with the current resolution of the observations, it is difficult to obtain these correlations. Future observations with higher angular resolution observations of TDs with ALMA will help discern between different potential origins of cavities in TDs.

Additional Information

© 2018 The American Astronomical Society. Received 2018 February 8; revised 2018 April 5; accepted 2018 April 17; published 2018 May 21. The authors are very thankful to A. Natta for all the discussions about the results of this paper. P.P. acknowledges support by NASA through Hubble Fellowship grant HST-HF2-51380.001-A, awarded by the Space Telescope Science Institute, which is operated by the Association of Universities for Research in Astronomy Inc. for NASA, under contract NAS 5-26555. M.T. has been supported by the DISCSIM project, grant agreement 341137 funded by the European Research Council under ERC-2013-ADG. M.T., C.F.M., and L.T. acknowledge support by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation)—Ref no. FOR 2634/1. I.P. and N.H. acknowledge support from an NSF Astronomy & Astrophysics Research Grant (ID: 1515392). C.F.M. acknowledges support through an ESO Fellowship. G.vdP. acknowledges funding from the ANR of France under contract number ANR-16-CE31-0013. S.A.B. acknowledges support from the National Science Foundation Graduate Research Fellowship under grant No. DGE1144469 and from NSF grant No. AST-1140063. In addition, an allocation of computer time from the UA Research Computing High Performance Computing (HPC) at the University of Arizona to perform the simulations presented in this paper is gratefully acknowledged. This paper makes use of the following ALMA data: ADS/JAO.ALMA #2011.0.00724.S, 2011.1.00863.S, 2011.0.00966.S, 2012.1.00158.S, 2012.1.00182.S, 2013.1.00091.S, 2013.1.00157.S, 2013.1.00220.S, 2013.1.00395.S, 2013.1.00437.S, 2013.1.00498.S, 2013.1.00658.S, 2013.1.00663.S, 2013.1.01020S, and 2015.1.00934.S. ALMA is a partnership of ESO (representing its member states), NSF (USA), and NINS (Japan), together with NRC (Canada), MOST and ASIAA (Taiwan), and KASI (Republic of Korea), in cooperation with the Republic of Chile. The Joint ALMA Observatory is operated by ESO, AUI/NRAO, and NAOJ. This work has made use of data from the European Space Agency (ESA) mission Gaia (https://www.cosmos.esa.int/gaia), processed by the Gaia Data Processing and Analysis Consortium (DPAC, https://www.cosmos.esa.int/web/gaia/dpac/consortium). Funding for the DPAC has been provided by national institutions—in particular, the institutions participating in the Gaia Multilateral Agreement. Software: CASA (McMullin et al. 2007), GALARIO (Tazzari et al. 2018), emcee (Foreman-Mackey et al. 2013).

Attached Files

Published - Pinilla_2018_ApJ_859_32.pdf

Accepted Version - 1804.07301.pdf

Files

1804.07301.pdf

Files (5.9 MB)

Name Size
md5:db2fb61f4c958888f8de798c54610321
3.2 MB Preview Download
md5:97377c16154b17b3e798dd376f0f9c91
2.7 MB Preview Download

Additional details

Identifiers

Eprint ID
86546
Resolver ID
CaltechAUTHORS:20180522-111524573

Related works

Funding

NASA Hubble Fellowship
HST-HF2-51380.001-A
NASA
NAS 5-26555
European Research Council (ERC)
341137
Deutsche Forschungsgemeinschaft (DFG)
FOR 2634/1
NSF
AST-1515392
European Southern Observatory (ESO)
Agence Nationale pour la Recherche (ANR)
ANR-16-CE31-0013
NSF Graduate Research Fellowship
DGE-1144469
NSF
AST-1140063
Gaia Multilateral Agreement

Dates

Created
2018-05-22
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field