The GRAVITY young stellar object survey. II. First spatially resolved observations of the CO bandhead emission in a high-mass YSO

The inner regions of the discs of high-mass young stellar objects (HMYSOs) are still poorly known due to the small angular scales and the high visual extinction involved. We deploy near-infrared (NIR) spectro-interferometry to probe the inner gaseous disc in HMYSOs and investigate the origin and physical characteristics of the CO bandhead emission (2.3-2.4 $\mu$m). We present the first GRAVITY/VLTI observations at high spectral (R=4000) and spatial (mas) resolution of the CO overtone transitions in NGC 2024 IRS2. The continuum emission is resolved in all baselines and is slightly asymmetric, displaying small closure phases ($\leq$8$^{\circ}$). Our best ellipsoid model provides a disc inclination of 34$^{\circ}$$\pm$1$^{\circ}$, a disc major axis position angle of 166$^{\circ}$$\pm$1$^{\circ}$, and a disc diameter of 3.99$\pm$0.09 mas (or 1.69$\pm$0.04 au, at a distance of 423 pc). The small closure phase signals in the continuum are modelled with a skewed rim, originating from a pure inclination effect. For the first time, our observations spatially and spectrally resolve the first four CO bandheads. Changes in visibility, as well as differential and closure phases across the bandheads are detected. Both the size and geometry of the CO-emitting region are determined by fitting a bidimensional Gaussian to the continuum-compensated CO bandhead visibilities. The CO-emitting region has a diameter of 2.74$\pm^{0.08}_{0.07}$ mas (1.16$\pm$0.03 au), and is located in the inner gaseous disc, well within the dusty rim, with inclination and $PA$ matching the dusty disc geometry, which indicates that both dusty and gaseous discs are coplanar. Physical and dynamical gas conditions are inferred by modelling the CO spectrum. Finally, we derive a direct measurement of the stellar mass of $M_*\sim$14.7$^{+2}_{-3.6}$ M$_{\odot}$ by combining our interferometric and spectral modelling results.

P. T. de Zeeuw | T. Paumard | L. Jocou | K. Perraut | G. Duvert | A. Amorim | V. Coudé du Foresto | A. Eckart | G. Rousset | R. Genzel | P. Kervella | S. Gillessen | T. P. Ray | T. Henning | H. Linz | S. Scheithauer | G. Perrin | C. Straubmeier | L. Labadie | F. Eisenhauer | R. Garcia Lopez | E. F. van Dishoeck | F. Widmann | J.-P. Berger | E. Gendron | W. Brandner | C. Dougados | University College Dublin | T. Ott | E. Sturm | M. Koutoulaki | R. Fedriani | O. Straub | S. Lacour | U. California | S. O. Physics | Cnrs | B. Lazareff | G. Perrin | D. Astronomy | E. Observatory | P. Caselli | S. Lacour | W. Thi | T. Ray | E. V. Dishoeck | J. Berger | G. Duvert | A. Eckart | E. Gendron | M. F. Astronomy | R. Genzel | Observatoire de Paris | F. Eisenhauer | T. Paumard | P. Kervella | U. G. Alpes | Ipag | Chile. | K. Perraut | M. Benisty | R. Grellmann | L. Labadie | S. Gillessen | Centra | E. Sturm | H. Linz | C. Dougados | F. Gao | M. Horrobin | P. Institut | T. Henning | A. Bik | U. Porto | Lesia | P. Caselli | B. Lazareff | M. Benisty | Department of Space | P. Garcia | F. Gao | M. Horrobin | A. Bik | V. C. D. Foresto | A. Caratti o Garatti | L. Klarmann | J. Sanchez-Bermudez | R. Grellmann | J.-B. Le Bouquin | J. Shangguan | J. Stadler | C. U. Technology | L. Jocou | A. Amorim | P. Garcia | J. Shangguan | J. Stadler | O. Straub | C. Straubmeier | P. Gordo | J. Sanchez-Bermudez | F. Vincent | U. Koln | M. F. Physics | I. D. Astronom'ia | Universidad Nacional Autnoma de M'exico | W. Brandner | R. G. Lopez | G. Rousset | L. Klarmann | M. Koutoulaki | Y. Clénet | P. Gordo | P. Léna | W. F. Thi | F. H. Vincent | P. university | R. Fedriani | S. University | D. Physics | L. Hall | P. L'ena | S. Scheithauer | L. Observatory | Leiden University | F. H. I. S. F. A. Studies | P. Zeeuw | EarthEnvironment | J. L. Bouquin | T. Ott | G. Garatti | Y. Cl'enet

[1]  T. Ray,et al.  Mirror, mirror on the outflow cavity wall , 2020, 2001.00369.

[2]  M. Skrutskie,et al.  The Two Micron All Sky Survey (2MASS) , 2006 .

[3]  Belgium,et al.  The peculiar circumstellar environment of NGC 2024 IRS2 , 2003, astro-ph/0310262.

[4]  Olivier Chesneau,et al.  Pseudomagnitudes and Differential Surface Brightness: Application to the apparent diameter of stars , 2016, 1604.07700.

[5]  L. Hartmann,et al.  THE GOULD’S BELT DISTANCES SURVEY (GOBELINS). II. DISTANCES AND STRUCTURE TOWARD THE ORION MOLECULAR CLOUDS , 2016, The Astrophysical Journal.

[6]  E. Mamajek,et al.  INTRINSIC COLORS, TEMPERATURES, AND BOLOMETRIC CORRECTIONS OF PRE-MAIN-SEQUENCE STARS , 2013, 1307.2657.

[7]  J. D. Monnier,et al.  The Inner Regions of Protoplanetary Disks , 2010, 1006.3485.

[8]  J. Black,et al.  The photodissociation and chemistry of interstellar CO , 1988 .

[9]  S. Rabien,et al.  First light for GRAVITY: Phase referencing optical interferometry for the Very Large Telescope Interferometer , 2017, 1705.02345.

[10]  W. Thi,et al.  Evidence for an inner molecular disk around massive Young Stellar Objects , 2004, astro-ph/0410098.

[11]  S. Lumsden,et al.  CO bandhead emission of massive young stellar objects: determining disc properties , 2012, 1212.0554.

[12]  Firenze,et al.  Accretion disks in luminous young stellar objects , 2015, 1509.08335.

[14]  B. Lazareff,et al.  Structure of Herbig AeBe disks at the milliarcsecond scale: A statistical survey in the H band using PIONIER-VLTI , 2016, 1611.08428.

[15]  Jonathan P. Williams,et al.  PROTOPLANETARY DISK MASSES IN THE YOUNG NGC 2024 CLUSTER , 2015, 1501.06512.

[16]  Daniel Foreman-Mackey,et al.  emcee: The MCMC Hammer , 2012, 1202.3665.

[17]  Romain G. Petrov,et al.  Near-infrared interferometry of eta Carinae with spectral resolutions of 1 500 and 12 000 using AMBER/VLTI , 2007 .

[18]  National Optical Astronomy Observatory,et al.  Accretion Signatures from Massive Young Stellar Objects , 2004, Proceedings of the International Astronomical Union.

[19]  University College Dublin,et al.  Exploring the dimming event of RW Aurigae A through multi-epoch VLT/X-shooter spectroscopy , 2019, Astronomy & Astrophysics.

[20]  J. Carlstrom,et al.  Infrared CO Emission from Young Stars: Accretion Disks and Neutral Winds , 1995 .