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Mapping the merging zone of late infall in the AB Aur planet-forming system

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arxiv 2503.01957 v1 pith:45ANQYLI submitted 2025-03-03 astro-ph.EP

classification astro-ph.EP
keywords diskemissioninfalllateplanetsystemexo-diskformation
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abstract

Late infall events challenge the traditional view that planet formation occurs without external influence. Here we present deep ALMA $^{12}$CO $J=2-1$ and SO $J_{N}=5_6-4_5$ observations toward AB Aurigae, a Class II disk system with strong signs of gravitational instability and ongoing planet formation. By applying Keplerian and anti-Keplerian masks, we separate disk-like and non-disk-like motions of $^{12}$CO, considering the two outputs as the 'disk' and 'exo-disk' (out of disk) emission components, respectively. The disk component of $^{12}$CO extends to $\sim 1600$ au in radius and exhibits a stunningly rich architecture of global spiral structure. The exo-disk emission consists predominantly of three spiral structures -- S1, S2 and S3 -- whose projections are co-spatial with the disk. We successfully reproduce their trajectories with a ballistic accretion flow model, finding that S1 and S2 (both redshifted) are infalling toward the disk from in front, and S3 (blueshifted) is infalling from behind. Where the terminal ends of S1 and S2 become indistinguishable from the disk, we observe a brightness peak in SO emission $2.5\times$ the azimuthal average of a background SO ring. This merging zone lies within a relatively confined region $15-100$ degrees east of north, and between $\sim150-300$ au from the star, at scales relevant to where planet candidates have been previously identified. The AB Aur system provides a unified picture of late infall inducing replenishment of the disk, triggering gravitational instability, and modifying the conditions of forming planets.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Angular Momentum of Planet-Forming Disks: Implications for Infall Driven Misalignments

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    Most planet-forming disks have less angular momentum than late-infalling cloud gas is predicted to carry, so infalling streamers are a plausible cause of the observed misalignments.

  2. SO emission in the dynamically perturbed protoplanetary disks around CQ Tau and MWC 758

    astro-ph.EP 2025-06 conditional novelty 6.0 of 10

    SO emission is detected in the perturbed disks of CQ Tau and MWC 758, extending the sample of SO-bearing disks to nine systems and suggesting a possible link between disk dynamics and sulfur chemistry.

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