A photo-evaporative gap in the closest planet forming disc
arXiv:1609.03903 · doi:10.1093/mnrasl/slw188
Abstract
The dispersal of the circumstellar discs of dust and gas surrounding young low- mass stars has important implications for the formation of planetary systems. Photo- evaporation from energetic radiation from the central object is thought to drive the dispersal in the majority of discs, by creating a gap which disconnects the outer from the inner regions of the disc and then disperses the outer disc from the inside-out, while the inner disc keeps draining viscously onto the star. In this Letter we show that the disc around TW Hya, the closest protoplanetary disc to Earth, may be the first object where a photoevaporative gap has been imaged around the time at which it is being created. Indeed the detected gap in the ALMA images is consistent with the expectations of X-ray photoevaporation models, thus not requiring the presence of a planet. The photoevaporation model is also consistent with a broad range of properties of the TW Hya system, e.g. accretion rate and the location of the gap at the onset of dispersal. We show that the central, unresolved 870 μm continuum source might be produced by free free emission from the gas and/or residual dust inside the gap.
5 pages, 2 figures, Accepted by MNRAS Letters
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Cited by in corpus (10)
- CO and dust properties in the TW Hya disk from high-resolution ALMA observations
- Planet-forming material in a protoplanetary disc: the interplay between chemical evolution and pebble drift
- Characterizing the dust content of disk substructures in TW Hya
- Distribution of solids in the rings of the HD 163296 disk: a multiwavelength study
- A measure of the size of the magnetospheric accretion region in TW Hydrae
- Redshifted X-rays from the material accreting onto TW Hya: evidence of a low-latitude accretion spot
- The imprint of X-ray photoevaporation of planet-forming discs on the orbital distribution of giant planets
- Pebble accretion in class 0/I YSOs as a possible pathway for early planet formation
- High-resolution [OI] line spectral mapping of TW Hya consistent with X-ray driven photoevaporation
- Giant planet migration during the disc dispersal phase