A dearth of short-period massive binaries in the young massive star forming region M17: Evidence for a large orbital separation at birth?
arXiv:1702.02153 · doi:10.1051/0004-6361/201630087
Abstract
The formation of massive stars remains poorly understood and little is known about their birth multiplicity properties. Here, we investigate the strikingly low radial-velocity dispersion measured for a sample of 11 massive pre- and near-main-sequence stars (sigma_rv = 5.6 +/- 0.2 km/s) in the young massive star forming region M17 to obtain first constraints on the multiplicity properties of young massive stellar objects. Methods: We compute the RV dispersion of synthetic populations of massive stars for various multiplicity properties and we compare the simulated sigma_rv distributions to the observed value. We specifically investigate two scenarios: a low binary fraction and a dearth of short-period binary systems. Results: Simulated populations with low binary fractions (f_bin = 0.12_{-0.09}^{+0.16}) or with truncated period distributions (P_cutoff > 9 months) are able to reproduce the low sigma_rv observed within their 68%-confidence intervals. Parent populations with f_bin > 0.42 or P_cutoff < 47 d can however be rejected at the 5%-significance level. Both constraints are contrast with the high binary fraction and plethora of short-period systems found in few Myr-old, OB-type populations. To explain the difference, the first scenario requires a variation of the outcome of the massive star formation process. In the the second scenario, compact binaries must form later on, and the cut-off period may be related to physical length-scales representative of the bloated pre-main-sequence stellar radii or of their accretion disks. Conclusions: If the obtained constraints are representative of the overall properties of massive young stellar objects, our results may provide support to a formation process in which binaries are initially formed at larger separations, then harden or migrate to produce the typical (untruncated) power-law period distribution observed in few Myr-old OB binaries.
5 pages; Accepted for publication in Astronomy and Astrophysics Letters
References in corpus (13)
- Binary interaction dominates the evolution of massive stars
- Southern Massive Stars at High Angular Resolution: Observational Campaign and Companion Detection
- The High Angular Resolution Multiplicity of Massive Stars
- Toward Complete Statistics of Massive Binary Stars: Penultimate Results from the Cygnus OB2 Radial Velocity Survey
- A hot compact dust disk around a massive young stellar object
- The Tarantula Massive Binary Monitoring: I. Observational campaign and OB-type spectroscopic binaries
- The young stellar population in M17 revealed by Chandra
- VLT K-band spectroscopy of massive young stellar objects in (ultra-)compact HII regions
- Early-type stars in the young open cluster IC1805. II. The probably single stars HD15570 and HD15629, and the massive binary/triple system HD15558
- R144 revealed as a double-lined spectroscopic binary
- A close encounter of the massive kind
- Massive binaries in high-mass star-forming regions: A multi-epoch radial velocity survey of embedded O-stars
- Detection of a large fraction of atomic gas not associated with star-forming material in M17 SW
Cited by in corpus (27)
- A Sun-like star orbiting a black hole
- OB associations and their origins
- Stellar mergers as the origin of the blue main-sequence band in young star clusters
- The IMF and multiplicity of stars from gravity, turbulence, magnetic fields, radiation and outflow feedback
- Long-term Evolution of Binary Orbits Induced by Circumbinary Disks
- A relation between the radial velocity dispersion of young clusters and their age: Evidence for hardening as the formation scenario of massive close binaries
- A pilot survey of the binarity of Massive Young Stellar Objects with band adaptive optics
- The VLT-FLAMES Tarantula Survey: XXXI. Radial velocities and multiplicity constraints of red supergiant stars in 30 Doradus
- The role of the turbulence driving mode for the Initial Mass Function
- Companion-driven evolution of massive stellar binaries
- On the origin of close massive binaries in the M17 star-forming region
- The first interferometric survey in the K-band of massive YSOs. On the hot dust, ionised gas, and binarity at au scales
- Constraining the overcontact phase in massive binary evolution -- II. Period stability of known O+O overcontact systems
- Near-infrared spectroscopy of the massive stellar population of W51: evidence for multi-seeded star formation
- Tracing the evolution of short-period binaries with super-synchronous fast rotators
- Modeling contact binaries, III. Properties of a population of close, massive binaries
- Structure of the Source I disk in Orion-KL
- An interferometric study of B star multiplicity
- The spectroscopic binary fraction of the young stellar cluster M17
- The onset of stellar multiplicity in massive star formation: A search for low-mass companions of massive young stellar objects with -band adaptive optics imaging
- The influence of the cloud virial parameter on the initial mass function
- Discovery of an M-type Companion to the Herbig Ae Star V1787 Ori
- Revealing the elusive companion of the red giant binary 2MASSJ05215658+4359220 from UV HST and Astrosat-UVIT data
- Hot Stars in the GALEX Ultraviolet Sky Surveys (GUVcat_AISxSDSS_HS) and the Binary Fraction of Hot Evolved Stars
- Detailed evolutionary models of massive contact binaries: I. Model grids and synthetic populations for the Magellanic Clouds
- Kinematics of the Central Stars Powering Bowshock Nebulae and the Large Multiplicity Fraction of Runaway OB Stars
- Non-parametric identification of single-lined binary candidates in young clusters using single-epoch spectroscopy