Adsorption of solutes at liquid-vapor interfaces: Insights from lattice gas models
arXiv:1205.6263 · doi:10.1039/C2FD20106B
Abstract
The adsorption behavior of ions at liquid-vapor interfaces exhibits several unexpected yet generic features. In particular, energy and entropy are both minimum when the solute resides near the surface, for a variety of ions in a range of polar solvents, contrary to predictions of classical theories. Motivated by this generality, and by the simple physical ingredients implicated by computational studies, we have examined interfacial solvation in highly schematic models, which resolve only coarse fluctuations in solvent density and cohesive energy. Here we show that even such lattice gas models recapitulate surprising thermodynamic trends observed in detailed simulations and experiments. Attention is focused on the case of two dimensions, for which approximate energy and entropy profiles can be calculated analytically. Simulations and theoretical analysis of the lattice gas highlight the role of capillary wave-like fluctuations in mediating adsorption. They further point to ranges of temperature and solute-solvent interaction strength where surface propensity is expected to be strongest.
Accepted for publication in Faraday Discuss
Cited by in corpus (4)
- Rough interfaces, accurate predictions: The necessity of capillary modes in a minimal model of nanoscale hydrophobic solvation
- Putting water on a lattice: The importance of long wavelength density fluctuations in theories of hydrophobic and interfacial phenomena
- Interfacial ion solvation: Obtaining the thermodynamic limit from molecular simulations
- Remembering the work of Phillip L. Geissler: A coda to his scientific trajectory