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A Potential Site for Wide-orbit Giant Planet Formation in the IM Lup Disk

Bosman, Arthur D. ; Appelgren, Johan LU ; Bergin, Edwin A. ; Lambrechts, Michiel LU and Johansen, Anders LU (2023) In Astrophysical Journal Letters 944(2).
Abstract

The radial transport, or drift, of dust has taken a critical role in giant planet formation theory. However, it has been challenging to identify dust drift pileups in the hard-to-observe inner disk. We find that the IM Lup disk shows evidence that it has been shaped by an episode of dust drift. Using radiative transfer and dust dynamical modeling we study the radial and vertical dust distribution. We find that high dust drift rates exceeding 110 M Myr−1 are necessary to explain both the dust and CO observations. Furthermore, the bulk of the large dust present in the inner 20 au needs to be vertically extended, implying high turbulence (α z ≳ 10−3) and small grains (0.2-1 mm). We suggest... (More)

The radial transport, or drift, of dust has taken a critical role in giant planet formation theory. However, it has been challenging to identify dust drift pileups in the hard-to-observe inner disk. We find that the IM Lup disk shows evidence that it has been shaped by an episode of dust drift. Using radiative transfer and dust dynamical modeling we study the radial and vertical dust distribution. We find that high dust drift rates exceeding 110 M Myr−1 are necessary to explain both the dust and CO observations. Furthermore, the bulk of the large dust present in the inner 20 au needs to be vertically extended, implying high turbulence (α z ≳ 10−3) and small grains (0.2-1 mm). We suggest that this increased level of particle stirring is consistent with the inner dust-rich disk undergoing turbulence triggered by the vertical shear instability. The conditions in the IM Lup disk imply that giant planet formation through pebble accretion is only effective outside of 20 au. If such an early, high-turbulence inner region is a natural consequence of high dust drift rates, then this has major implications for understanding the formation regions of giant planets including Jupiter and Saturn.

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author
; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Astrophysical Journal Letters
volume
944
issue
2
article number
L53
publisher
IOP Publishing
external identifiers
  • scopus:85149024764
ISSN
2041-8205
DOI
10.3847/2041-8213/acb651
language
English
LU publication?
yes
id
afc2e206-8424-4118-815f-2039caeabf4a
date added to LUP
2023-03-20 14:19:57
date last changed
2023-03-20 14:19:57
@article{afc2e206-8424-4118-815f-2039caeabf4a,
  abstract     = {{<p>The radial transport, or drift, of dust has taken a critical role in giant planet formation theory. However, it has been challenging to identify dust drift pileups in the hard-to-observe inner disk. We find that the IM Lup disk shows evidence that it has been shaped by an episode of dust drift. Using radiative transfer and dust dynamical modeling we study the radial and vertical dust distribution. We find that high dust drift rates exceeding 110 M <sub>⊕</sub> Myr<sup>−1</sup> are necessary to explain both the dust and CO observations. Furthermore, the bulk of the large dust present in the inner 20 au needs to be vertically extended, implying high turbulence (α <sub>z </sub> ≳ 10<sup>−3</sup>) and small grains (0.2-1 mm). We suggest that this increased level of particle stirring is consistent with the inner dust-rich disk undergoing turbulence triggered by the vertical shear instability. The conditions in the IM Lup disk imply that giant planet formation through pebble accretion is only effective outside of 20 au. If such an early, high-turbulence inner region is a natural consequence of high dust drift rates, then this has major implications for understanding the formation regions of giant planets including Jupiter and Saturn.</p>}},
  author       = {{Bosman, Arthur D. and Appelgren, Johan and Bergin, Edwin A. and Lambrechts, Michiel and Johansen, Anders}},
  issn         = {{2041-8205}},
  language     = {{eng}},
  number       = {{2}},
  publisher    = {{IOP Publishing}},
  series       = {{Astrophysical Journal Letters}},
  title        = {{A Potential Site for Wide-orbit Giant Planet Formation in the IM Lup Disk}},
  url          = {{http://dx.doi.org/10.3847/2041-8213/acb651}},
  doi          = {{10.3847/2041-8213/acb651}},
  volume       = {{944}},
  year         = {{2023}},
}