A measure of the size of the magnetospheric accretion region in TW Hydrae
arXiv:2104.06441 · doi:10.1038/s41586-020-2613-1
Abstract
Stars form by accreting material from their surrounding disks. There is a consensus that matter flowing through the disk is channelled onto the stellar surface by the stellar magnetic field. This is thought to be strong enough to truncate the disk close to the so-called corotation radius where the disk rotates at the same rate as the star. Spectro-interferometric studies in young stellar objects show that Hydrogen is mostly emitted in a region of a few milliarcseconds across, usually located within the dust sublimation radius. Its origin is still a matter of debate and it can be interpreted as coming from the stellar magnetosphere, a rotating wind or a disk. In the case of intermediate-mass Herbig AeBe stars, the fact that the Br gamma emission is spatially resolved rules out that most of the emission comes from the magnetosphere. This is due to the weak magnetic fields (some tenths of G) detected in these sources, resulting in very compact magnetospheres. In the case of T Tauri sources, their larger magnetospheres should make them easier to resolve. However, the small angular size of the magnetosphere (a few tenths of milliarcseconds), along with the presence of winds emitting in Hydrogen make the observations interpretation challenging. Here, we present direct evidence of magnetospheric accretion by spatially resolving the inner disk of the 60 pc T Tauri star TW Hydrae through optical long baseline interferometry. We find that the hydrogen near-infrared emission comes from a region approximately 3.5 stellar radii (R*) across. This region is within the continuum dusty disk emitting region (Rcont = 7 R*) and smaller than the corotation radius which is twice as big. This indicates that the hydrogen emission originates at the accretion columns, as expected in magnetospheric accretion models, rather than in a wind emitted at much larger distance (>1au).
Publish in Nature
References in corpus (12)
- Three radial gaps in the disk of TW Hydrae imaged with SPHERE
- Accretion funnels onto weakly magnetized young stars
- On the gas content of transitional disks: a VLT/X-Shooter study of accretion and winds
- The origin of hydrogen line emission for five Herbig Ae/Be stars spatially resolved by VLTI/AMBER spectro-interferometry
- CO and dust properties in the TW Hya disk from high-resolution ALMA observations
- Tracing Slow Winds from T Tauri Stars via Low Velocity Forbidden Line Emission
- Near-Infrared interferometry of Eta Carinae with high spatial and spectral resolution using the VLTI and the AMBER instrument
- Near-Infrared Interferometric, Spectroscopic, and Photometric Monitoring of T Tauri Inner Disks
- The non-dipolar magnetic fields of accreting T Tauri stars
- Probing the accretion-ejection connection with VLTI/AMBER: High spectral resolution observations of the Herbig Ae star HD163296
- A photo-evaporative gap in the closest planet forming disc
- The prevalence of weak magnetic fields in Herbig Ae stars: The case of PDS2
Cited by in corpus (25)
- Comparison of planetary Hα-emission models: A new correlation with accretion luminosity
- Three-dimensional Simulations of Magnetospheric Accretion in a T Tauri Star: Accretion and Wind Structures Just Around Star
- Towards a comprehensive view of accretion, inner disks, and extinction in classical T Tauri stars: an ODYSSEUS study of the Orion OB1b association
- The GRAVITY Young Stellar Object survey. VII. The inner dusty disks of T Tauri stars
- Measuring the Density Structure of an Accretion Hot Spot
- Herbig Stars: A Quarter Century of Progress
- First Light for GRAVITY Wide: Large Separation Fringe Tracking for the Very Large Telescope Interferometer
- High-resolution [O I] line spectral mapping of TW Hya supportive of a magnetothermal wind
- Magnetically-activated accretion outbursts of pre-main sequence discs
- Star-disk interaction in the T Tauri star V2129 Oph: An evolving accretion-ejection structure
- The GRAVITY young stellar object survey -- XI. Probing the inner disk and magnetospheric accretion region of CI Tau
- Stable accretion and episodic outflows in the young transition disk system GM Aurigae
- The first interferometric survey in the K-band of massive YSOs. On the hot dust, ionised gas, and binarity at au scales
- The GRAVITY Young Stellar Object survey VIII. Gas and dust faint inner rings in the hybrid disk of HD141569
- Spectroscopic and interferometric signatures of magnetospheric accretion in young stars
- First Light for the GRAVITY+ Adaptive Optics: Extreme Adaptive Optics for the Very Large Telescope Interferometer
- Episodic infall towards a compact disk in B335?
- Star-disk interactions in the strongly accreting T Tauri Star S CrA N
- Circumstellar disk accretion across the Lagoon Nebula: the influence of environment and stellar mass
- Monitoring H Emission from the Wide-orbit Brown-dwarf Companion FU Tau B
- The GRAVITY young stellar object survey XIV : Investigating the magnetospheric accretion-ejection processes in S CrA N
- First spatially resolved Na I and He I transitions towards an MYSO. Finding new tracers for the gaseous star/disc interface
- Understanding Accretion Variability Through TESS Observations of Taurus
- Identification and spectroscopic characterization of 128 new Herbig stars
- Diverse stages of star formation in the IRAS 18162-2048 region. Emergence of UV Feedback