Neural-Network Assisted Study of Nitrogen Atom Dynamics on Amorphous Solid Water -- II. Diffusion
arXiv:2112.05412 · doi:10.1093/mnras/stab3631
Abstract
The diffusion of atoms and radicals on interstellar dust grains is a fundamental ingredient for predicting accurate molecular abundances in astronomical environments. Quantitative values of diffusivity and diffusion barriers usually rely heavily on empirical rules. In this paper, we compute the diffusion coefficients of adsorbed nitrogen atoms by combining machine-learned interatomic potentials, metadynamics, and kinetic Monte Carlo simulations. With this approach, we obtain a diffusion coefficient of nitrogen atoms on the surface of amorphous solid water of merely cms at 10 K for a bare ice surface. Thus, we find that nitrogen, as a paradigmatic case for light and weakly bound adsorbates, is unable to diffuse on bare amorphous solid water at 10 K. Surface coverage has a strong effect on the diffusion coefficient by modulating its value over 9--12 orders of magnitude at 10 K and enables diffusion for specific conditions. In addition, we have found that atom tunneling has a negligible effect. Average diffusion barriers of the potential energy surface (2.56 kJ mol) differ strongly from the effective diffusion barrier obtained from the diffusion coefficient for a bare surface (6.06 kJ mol) and are, thus, inappropriate for diffusion modeling. Our findings suggest that the thermal diffusion of N on water ice is a process that is highly dependent on the physical conditions of the ice.
Accepted in MNRAS
References in corpus (11)
- Well-Tempered Metadynamics: A Smoothly Converging and Tunable Free-Energy Method
- PLUMED: a portable plugin for free-energy calculations with molecular dynamics
- Modeling Complex Organic Molecules in dense regions: Eley-Rideal and complex induced reaction
- A non-energetic mechanism for glycine formation in the interstellar medium
- Gaussian Moments as Physically Inspired Molecular Descriptors for Accurate and Scalable Machine Learning Potentials
- Instanton Rate Constant Calculations Close to and Above the Crossover Temperature
- Neural-Network Assisted Study of Nitrogen Atom Dynamics on Amorphous Solid Water. I. Adsorption & Desorption
- Diffusion of CH in amorphous solid water
- Extension of the HCOOH and CO2 solid-state reaction network during the CO freeze-out stage: inclusion of H2CO
- Alcohols on the rocks: solid-state formation in a H3CCCH + OH cocktail under dark cloud conditions
- Mechanism of Atomic Hydrogen Addition Reactions on np-ASW