In the early stages of planetary system formation, young exoplanets gravitationally interact with their surrounding environments and leave observable signatures on protoplanetary disks. Among these structures, a pair of nearly symmetric spiral arms can be driven by a giant protoplanet. For the double-spiraled SAO 206462 protoplanetary disk, we obtained three epochs of observations spanning 7 yr using the Very Large Telescope’s SPHERE instrument in near-infrared J-band polarized light. By jointly measuring the motion of the two spirals at three epochs, we obtained a rotation rate of (Formula presented.). This rate corresponds to a protoplanet at (Formula presented.) au on a circular orbit dynamically driving both spirals. The derived location agrees with the gap in ALMA dust-continuum observations, indicating that the spiral driver may also carve the observed gap. What is more, a dust filament at ∼63 au observed by ALMA coincides with the predicted orbit of the spiral-arm-driving protoplanet. This double-spiraled system is an ideal target for protoplanet imaging.

Disk Evolution Study Through Imaging of Nearby Young Stars (DESTINYS): Dynamical Evidence of a Spiral-Arm-Driving and Gap-Opening Protoplanet from SAO 206462 Spiral Motion / C. Xie, C. Xie, B.B. Ren, M. Benisty, C. Ginski, T. Fang, S. Casassus, J. Bae, S. Facchini, F. Ménard, R.G. van Holstein. - In: UNIVERSE. - ISSN 2218-1997. - 10:12(2024 Dec 20), pp. 465.1-465.10. [10.3390/universe10120465]

Disk Evolution Study Through Imaging of Nearby Young Stars (DESTINYS): Dynamical Evidence of a Spiral-Arm-Driving and Gap-Opening Protoplanet from SAO 206462 Spiral Motion

S. Facchini;
2024

Abstract

In the early stages of planetary system formation, young exoplanets gravitationally interact with their surrounding environments and leave observable signatures on protoplanetary disks. Among these structures, a pair of nearly symmetric spiral arms can be driven by a giant protoplanet. For the double-spiraled SAO 206462 protoplanetary disk, we obtained three epochs of observations spanning 7 yr using the Very Large Telescope’s SPHERE instrument in near-infrared J-band polarized light. By jointly measuring the motion of the two spirals at three epochs, we obtained a rotation rate of (Formula presented.). This rate corresponds to a protoplanet at (Formula presented.) au on a circular orbit dynamically driving both spirals. The derived location agrees with the gap in ALMA dust-continuum observations, indicating that the spiral driver may also carve the observed gap. What is more, a dust filament at ∼63 au observed by ALMA coincides with the predicted orbit of the spiral-arm-driving protoplanet. This double-spiraled system is an ideal target for protoplanet imaging.
coronagraphic imaging; orbital motion; planetary system formation; protoplanetary disks;
Settore PHYS-05/A - Astrofisica, cosmologia e scienza dello spazio
   Statistics-driven Planet Imaging in Circumstellar Environments
   SPICES
   European Commission
   Horizon Europe Framework Programme
   101103114

   From Dust to Planets: A Novel Approach to Constrain Dust Growth and the Planet Forming Zone in Disks
   Dust2Planets
   European Commission
   Horizon Europe Framework Programme
   101053020

   Establishing a global observational view of the early stages of planet formation and evolution
   PROTOPLANETS
   European Commission
   Horizon 2020 Framework Programme
   101002188
20-dic-2024
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1132776
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