Ammonium salt formation and abundance in protoplanetary disks
Maxime Ruaud, Jean-Christophe Loison, Uma Gorti
astro-ph.EP, astro-ph.GA, astro-ph.SR
Submitted: 2026-08-03
Comments: 12 pages
License: http://creativecommons.org/licenses/by-nc-nd/4.0/
The gist: Ammonium salts may represent an important reservoir of volatile species in Solar system primitive bodies, but the question of how and when these salts can form during the star formation process
Terminology
Abstract
Ammonium salts may represent an important reservoir of volatile species in Solar system primitive bodies, but the question of how and when these salts can form during the star formation process remains unknown. In this paper, we use thermo-chemical models to study the formation of ammonium salts during the protoplanetary disk stage. We show that ammonium salts form efficiently in the inner disk midplane (i.e. r 50 au), inside the comet forming region. In this region, our model predicts that almost all the available nitrogen is in the form of salts (i.e. mainly in ammonium cyanate) at the surface of grains after evolving for 10 Myrs. For sulfur, we show that almost all the available S is in the form of ammonium hydrosulfide in the inner disk midplane. We show that inside r about 30 au, ammonium salt formation is enhanced by a cosmic-ray-driven sink effect that progressively converts gas-phase CO and N 2 into carbon dioxide and salts, respectively, at the surface of grains on a timescale 1 Myr. This impacts the location of the CO and N 2 radial snowlines which both shift closer to the star as a function of time.
Sources
Related papers
- PDS 70 c and SR 12 c: Observational Constraints on Giant-Planet and Satellite Formation
- Two-stage disruption of resonant chains
- Detectability of resolved hydrogen lines from the accretion shock at gas giants and their CPDs
- Binary-lens Microlensing Degeneracy: Impact on Planetary Sensitivity and Mass-ratio Function
- Atmospheric escape fractionates secondary but not primary atmospheres
- The Occurrence Rate of Nearby Planetary Companions to Hot Jupiters