A tale of two cores: Triggered massive star formation in the bright-rimmed cloud SFO 75

Astronomy and Astrophysics – Astrophysics

Scientific paper

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15 pages, 8 figures, some figures have been compressed, an uncompressed version of the paper is available upon request from th

Scientific paper

10.1051/0004-6361:20077236

Abridged: We present a detailed multi-wavelength study of the bright-rimmed cloud SFO 75, including 1.3cm and 1.2mm continuum, and 13CO and ammonia spectral line observations. The 13CO and 1.2 mm emission reveals the presence of a dense core located behind the bright rim of the cloud which is approximately coincident with that of the IRAS point source. From an analysis of the IRAS and 1.2mm fluxes we derive a dust temperature of ~30 K, a luminosity of 1.6x10^4 L\odot and estimate the core mass to be ~570 M\odot. The higher resolution ammonia observations resolve the 1.2mm core into two distinct cores, one directly behind the cloud's rim (Core A) and the second located slightly farther back (Core B). Comparing the morphology of Core A with that of the photon-dominated region and ionised boundary layer leaves little doubt that it is being strongly affected by the ionisation front. 2MASS and GLIMPSE archive data which reveal a small cluster of three deeply embedded high- and intermediate-mass young stellar objects towards Core A leads us to conclude that the star formation found towards this core has been triggered. In stark contrast, Core B appears to have a much simpler, almost spherical, morphology. No stars are found towards Core B. The scenario that emerges from our analysis is one where the two ammonia cores pre-date the arrival of the ionisation front. Since its arrival the over-pressure of the ionised gas at the surface of the cloud has driven shocks into the surface layers of the cloud. The propagation of these shocks through Core A have triggered the formation of a small cluster of massive stars, however, the shock front has not yet propagated deeply enough into the cloud to have affected the evolution of Core B.

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