The first detection of gas-phase methanol in a protoplanetary disk (TW Hya) is presented. In addition to being one of the largest molecules detected in disks to date, methanol is also the first disk organic molecule with an unambiguous ice chemistry origin. The stacked methanol emission, as observed with ALMA, is spectrally resolved and detected across six velocity channels (>3σ), reaching a peak signal-to-noise of 5.5σ, with the kinematic pattern expected for TW~Hya. Using an appropriate disk model, a fractional abundance of 3×10−12−4×10−11 (with respect to H2) reproduces the stacked line profile and channel maps, with the favoured abundance dependent upon the assumed vertical location (midplane versus molecular layer). The peak emission is offset from the source position suggesting that the methanol emission has a ring-like morphology: the analysis here suggests it peaks at ≈30~AU reaching a column density ≈3−6×1012~cm−2. In the case of TW Hya, the larger (up to mm-sized) grains, residing in the inner 50~AU, may thus host the bulk of the disk ice reservoir. The successful detection of cold gas-phase methanol in a protoplanetary disk implies that the products of ice chemistry can be explored in disks, opening a window to studying complex organic chemistry during planetary system formation.
@article{arxiv.1606.06492,
title = {First detection of gas-phase methanol in a protoplanetary disk},
author = {Catherine Walsh and Ryan A. Loomis and Karin I. Oberg and Mihkel Kama and Merel L. R. van 't Hoff and Tom J. Millar and Yuri Aikawa and Eric Herbst and Susanna L. Widicus Weaver and Hideko Nomura},
journal= {arXiv preprint arXiv:1606.06492},
year = {2016}
}
Comments
14 pages, 4 figures, 1 table, published online in ApJL on 13th May 2016