English

The nitrogen carrier in protoplanetary disks

Solar and Stellar Astrophysics 2019-04-03 v1 Astrophysics of Galaxies

Abstract

The dominant reservoirs of elemental nitrogen in protoplanetary disks have not yet been observationally identified. Likely candidates are HCN, NH3_3 and N2_2. The relative abundances of these carriers determine the composition of planetesimals as a function of disk radius due to strong differences in their volatility. A significant sequestration of nitrogen in carriers less volatile than N2_2 is likely required to deliver even small amounts of nitrogen to the Earth and potentially habitable exo-planets. While HCN has been detected in small amounts in inner disks (<10<10 au), so far only relatively insensitive upper limits on inner disk NH3_3 have been obtained. We present new Gemini-TEXES high resolution spectroscopy of the 10.75 μ\mum band of warm NH3_3, and use 2-dimensional radiative transfer modeling to improve previous upper limits by an order of magnitude to [NH3/Hnuc]<107\rm [NH_3/H_{nuc}]<10^{-7} at 1 au. These NH3_3 abundances are significantly lower than those typical for ices in circumstellar envelopes ([NH3/Hnuc]3×106[{\rm NH_3/H_{nuc}}]\sim 3\times 10^{-6}). We also consistently retrieve the inner disk HCN gas abundances using archival Spitzer spectra, and derive upper limits on the HCN ice abundance in protostellar envelopes using archival ground-based 4.7 μ\mum spectroscopy ([HCNice_{\rm ice}]/[H2_2Oice_{\rm ice}]<1.59<1.5-9\%). We identify the NH3_3/HCN ratio as an indicator of chemical evolution in the disk, and use this ratio to suggest that inner disk nitrogen is efficiently converted from NH3_3 to N2_2, significantly increasing the volatility of nitrogen in planet-forming regions.

Keywords

Cite

@article{arxiv.1902.03647,
  title  = {The nitrogen carrier in protoplanetary disks},
  author = {Klaus M. Pontoppidan and Colette Salyk and Andrea Banzatti and Geoffrey A. Blake and Catherine Walsh and John H. Lacy and Matthew J. Richter},
  journal= {arXiv preprint arXiv:1902.03647},
  year   = {2019}
}

Comments

Accepted for publication in the Astrophysical Journal

R2 v1 2026-06-23T07:37:05.074Z