NH adsorption and competition with HO on a hydroxylated aluminosilicate surface
arXiv:2404.17436 · doi:10.1063/5.0202573
Abstract
The interaction between ammonia (NH) and (alumino)silicates is of fundamental and applied importance, yet the specifics of NH adsorption on silicate surfaces remain largely unexplored, mainly because of experimental challenges related to their electrically insulating nature. An example of this knowledge gap is evident in the context of ice nucleation on silicate dust, wherein the role of NH for ice nucleation remains debated. This study explores the fundamentals of the interaction between NH and microcline feldspar (KAlSiO), a common aluminosilicate with outstanding ice nucleation abilities. Atomically resolved non-contact atomic force microscopy, x-ray photoelectron spectroscopy, and density functional theory-based calculations elucidate the adsorption geometry of NH on the lowest-energy surface of microcline, the (001) facet, and its interplay with surface hydroxyls and molecular water. NH and HO are found to adsorb molecularly in the same adsorption sites, creating H-bonds with the proximate surface silanol (Si-OH) and aluminol (Al-OH) groups. Despite the closely matched adsorption energies of the two molecules, NH readily yields to replacement by HO, challenging the notion that ice nucleation on microcline proceeds via the creation of an ordered HO layer atop pre-adsorbed NH molecules.
14 pages, 3 figures
References in corpus (4)
- The mechanism of high-resolution STM/AFM imaging with functionalized tips
- The origin of high-resolution IETS-STM images of organic molecules with functionalized tips
- r2SCAN-D4: Dispersion corrected meta-generalized gradient approximation for general chemical applications
- Resolving the intrinsic short-range ordering of K ions on cleaved muscovite mica