Published March 10, 2017 | Version v1
Journal article

Three Radial Gaps in the Disk of TW Hydrae Imaged with SPHERE

  • 1. Max Planck-Institut für Astronomie, Königstuhl 17, D-69117 Heidelberg (Germany)
  • 2. Leiden Observatory, Leiden University, P.O. Box 9513, 2300 RA Leiden (Netherlands)
  • 3. Centre de Recherche Astrophysique de Lyon, CNRS, Universiteé Lyon 1, 9 avenue Charles André, F-69561 Saint-Genis-Laval Cedex (France)
  • 4. Departamento de Astronomía, Universidad de Chile, Casilla 36-D, Santiago (Chile)
  • 5. LESIA, Observatoire de Paris, PSL, Research University, CNRS, Sorbonne Universités, UPMC Univ. Paris 06, Univ. Paris Diderot, Sorbonne Paris Cité, 5 place Jules Janssen, 92195 Meudon (France)
  • 6. Institute for Astronomy, ETH Zürich, Wolfgang-Pauli-Strasse 27, 8093 Zürich (Switzerland)
  • 7. Université Grenoble Alpes, IPAG, F-38000 Grenoble (France)
  • 8. Anton Pannekoek Institute for Astronomy, University of Amsterdam, Science Park 904, 1098 XH Amsterdam (Netherlands)
  • 9. European Southern Observatory, Alonso de Córdova 3107, Casilla 19001 Vitacura, Santiago 19 (Chile)
  • 10. Instituto de Astrofísica, Pontificia Universidad Catolica de Chile, Av. Vicun a Mackenna 4860, Macul, Santiago De Chile (Chile)

Description

We present scattered light images of the TW Hya disk performed with the Spectro-Polarimetric High-contrast Exoplanet REsearch instrument in Polarimetric Differential Imaging mode at 0.63, 0.79, 1.24, and 1.62 μm. We also present H2/H3-band angular differential imaging (ADI) observations. Three distinct radial depressions in the polarized intensity distribution are seen, around ≈85, ≈21, and ≲6 au.21 The overall intensity distribution has a high degree of azimuthal symmetry; the disk is somewhat brighter than average toward the south and darker toward the north–west. The ADI observations yielded no signifiant detection of point sources in the disk. Our observations have a linear spatial resolution of 1–2 au, similar to that of recent ALMA dust continuum observations. The sub-micron-sized dust grains that dominate the light scattering in the disk surface are strongly coupled to the gas. We created a radiative transfer disk model with self-consistent temperature and vertical structure iteration and including grain size-dependent dust settling. This method may provide independent constraints on the gas distribution at higher spatial resolution than is feasible with ALMA gas line observations. We find that the gas surface density in the "gaps" is reduced by ≈50% to ≈80% relative to an unperturbed model. Should embedded planets be responsible for carving the gaps then their masses are at most a few 10 M . The observed gaps are wider, with shallower flanks, than expected for planet–disk interaction with such low-mass planets. If forming planetary bodies have undergone collapse and are in the "detached phase," then they may be directly observable with future facilities such as the Mid-Infrared E-ELT Imager and Spectrograph at the E-ELT.

Availability note (English)

Available from http://dx.doi.org/10.3847/1538-4357/aa5d68

Additional details

Identifiers

Publishing Information

Journal Title
Astrophysical Journal
Journal Volume
837
Journal Issue
2
Journal Page Range
[23 p.]
ISSN
0004-637X
CODEN
ASJOAB

INIS

Country of Publication
United States
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51031108
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Descriptors DEI
COSMIC DUST; DENSITY; DISTRIBUTION; GRAIN SIZE; INTERACTIONS; MASS; PLANETS; POINT SOURCES; PROTOPLANETS; RADIANT HEAT TRANSFER; SPATIAL RESOLUTION; STARS; SURFACES; SYMMETRY
Descriptors DEC
DUSTS; ENERGY TRANSFER; HEAT TRANSFER; MICROSTRUCTURE; PHYSICAL PROPERTIES; RADIATION SOURCES; RESOLUTION; SIZE