Gas accretion within the dust cavity in AB Aur
arXiv:1906.11638 · doi:10.3847/2041-8213/ab289d
Abstract
AB Aur is a Herbig Ae star hosting a well-known transitional disk. Because of its proximity and low inclination angle, it is an excellent object to study planet formation. Our goal is to investigate the chemistry and dynamics of the molecular gas component in the AB Aur disk, and its relation with the prominent horseshoe shape observed in continuum mm emission. We used the NOEMA interferometer to map with high angular resolution the J = 3-2 lines of HCO+ and HCN. By combining both, we can gain insight into the AB Aur disk structure. Chemical segregation is observed in the AB Aur disk: HCO+ shows intense emission toward the star position, at least one bright molecular bridge within the dust cavity, and ring-like emission at larger radii, while HCN is only detected in an annular ring that is coincident with the dust ring and presents an intense peak close to the dust trap. We use HCO+ to investigate the gas dynamics inside the cavity. The observed bright HCO+ bridge connects the compact central source with the outer dusty ring. This bridge can be interpreted as an accretion flow from the outer ring to the inner disk/jet system proving gas accretion through the cavity.
7 pages, 3 figures
References in corpus (10)
- Accretion Rates in Herbig Ae stars
- Direct Imaging of Fine Structures in Giant Planet Forming Regions of the Protoplanetary Disk around AB Aurigae
- CO gas inside the protoplanetary disk cavity in HD 142527: disk structure from ALMA
- CO emission tracing a warp or radial flow within 100 au in the HD 100546 protoplanetary disk
- An Ionized Outflow from AB Aur, a Herbig Ae Star with a Transitional Disk
- Probing the cold dust emission in the AB Aur disk: a dust trap in a decaying vortex?
- Herschel-PACS observations of far-IR lines in YSOs I: [OI] and H2O at 63 microns
- The protoplanetary system HD 100546 in H polarized light from SPHERE/ZIMPOL. A bar-like structure across the disk gap?
- Chemical composition of the circumstellar disk around AB Aurigae
- Dimming and CO absorption toward the AA Tau protoplanetary disk: An infalling flow caused by disk instability?
Cited by in corpus (4)
- Possible evidence of ongoing planet formation in AB Aurigae. A showcase of the SPHERE/ALMA synergy
- Binary-induced spiral arms inside the disc cavity of AB Aurigae
- AB Aur, a Rosetta stone for studies of planet formation (II): HS detection and sulfur budget
- Kinematical signatures: Distinguishing between warps and radial flows