HST Astrometry in the 30 Doradus Region. II. Runaway Stars from New Proper Motions in the Large Magellanic Cloud

We present a catalog of relative proper motions for 368,787 stars in the 30 Doradus region of the Large Magellanic Cloud (LMC), based on a dedicated two-epoch survey with the Hubble Space Telescope (HST) and supplemented with proper motions from our pilot archival study. We demonstrate that a relatively short epoch difference of 3 years is sufficient to reach a $\sim$0.1 mas yr$^{-1}$ level of precision or better. A number of stars have relative proper motions exceeding a 3-sigma error threshold, representing a mixture of Milky Way denizens and 17 potential LMC runaway stars. Based upon 183 VFTS OB-stars with the best proper motions, we conclude that none of them move faster than $\sim$0.3 mas yr$^{-1}$ in each coordinate -- equivalent to $\sim$70 km s$^{-1}$. Among the remaining 351 VFTS stars with less accurate proper motions, only one candidate OB runaway can be identified. We rule out any OB star in our sample moving at a tangential velocity exceeding $\sim$120 km s$^{-1}$. The most significant result of this study is finding 10 stars over wide range of masses, which appear to be ejected from the massive star cluster R136 in the tangential plane to angular distances from $35^{\prime\prime}$ out to $407^{\prime\prime}$, equivalent to 8-98 pc. The tangential velocities of these runaways appear to be correlated with apparent magnitude, indicating a possible dependence on the stellar mass.

[1]  O. H. Ramírez-Agudelo,et al.  The VLT-FLAMES Tarantula Survey - XXVI. Properties of the O-dwarf population in 30 Doradus , 2017, 1702.04773.

[2]  Linda J. Smith,et al.  HUBBLE TARANTULA TREASURY PROJECT. III. PHOTOMETRIC CATALOG AND RESULTING CONSTRAINTS ON THE PROGRESSION OF STAR FORMATION IN THE 30 DORADUS REGION , 2015, 1511.06021.

[3]  P. Kroupa,et al.  DEPENDENCY OF DYNAMICAL EJECTIONS OF O STARS ON THE MASSES OF VERY YOUNG STAR CLUSTERS , 2015, 1503.08827.

[4]  P. Kroupa,et al.  Dynamical ejections of massive stars from young star clusters under diverse initial conditions , 2016, 1604.00006.

[5]  C. Evans,et al.  The VLT-FLAMES Tarantula Survey - XVIII. Classifications and radial velocities of the B-type stars , 2015, 1501.04108.

[6]  A. Z. Bonanos,et al.  The VLT-FLAMES Tarantula Survey: I. Introduction and observational overview⋆ , 2011, 1103.5386.

[7]  Jay Anderson,et al.  An Empirical Pixel-Based Correction for Imperfect CTE. I. HST’s Advanced Camera for Surveys , 2010, 1007.3987.

[8]  Jay Anderson,et al.  Toward High‐Precision Astrometry with WFPC2. I. Deriving an Accurate Point‐Spread Function , 2000, astro-ph/0006325.

[9]  C. Evans,et al.  The VLT-FLAMES Tarantula Survey XXII. Multiplicity properties of the B-type stars , 2015 .

[10]  STScI,et al.  Astrometry and Photometry with HST WFC3. II. Improved Geometric-Distortion Corrections for 10 Filters of the UVIS Channel , 2011, 1102.5218.

[11]  S. Majewski,et al.  Star Counts Redivivus. I. A New Look at the Galaxy at Faint Magnitudes , 1993 .

[12]  N. Langer,et al.  Runaway stars as progenitors of supernovae and gamma-ray bursts , 2011, 1103.1877.

[13]  Observatoire de la Côte d'Azur,et al.  Gaia Data Release 1. Summary of the astrometric, photometric, and survey properties , 2016, 1609.04172.

[14]  N. Bastian,et al.  The VLT-FLAMES Tarantula Survey II: R139 revealed as a massive binary system , 2011, 1105.1775.

[15]  C. Evans,et al.  2dF-AAOmega spectroscopy of massive stars in the Magellanic Clouds: The north-eastern region of the Large Magellanic Cloud , 2015, 1508.03490.

[16]  O. H. Ramírez-Agudelo,et al.  The VLT-FLAMES Tarantula Survey IV: Candidates for isolated high-mass star formation in 30 Doradus , 2012, 1204.3628.

[17]  Jay Anderson,et al.  An Improved Distortion Solution for the Hubble Space Telescope’s WFPC2 , 2002 .

[18]  O. H. Ramírez-Agudelo,et al.  An excess of massive stars in the local 30 Doradus starburst , 2018, Science.

[19]  Institute for Astronomy,et al.  The VLT-FLAMES Tarantula Survey. XIV. The O-type stellar content of 30 Doradus , 2014, 1402.6969.

[20]  J. J. González-Vidal,et al.  Gaia Data Release 2 , 2018, Astronomy & Astrophysics.

[21]  A. Bonanos,et al.  The R136 star cluster dissected with Hubble Space Telescope/STIS. I. Far-ultraviolet spectroscopic census and the origin of He II λ1640 in young star clusters , 2016, 1603.04994.

[22]  Linda J. Smith,et al.  HUBBLE TARANTULA TREASURY PROJECT. II. THE STAR-FORMATION HISTORY OF THE STARBURST REGION NGC 2070 IN 30 DORADUS , 2015 .

[23]  ESAC,et al.  HST ASTROMETRY IN THE 30 DORADUS REGION: MEASURING PROPER MOTIONS OF INDIVIDUAL STARS IN THE LARGE MAGELLANIC CLOUD , 2015, 1507.06653.