info:eu-repo/semantics/article
Modeling the abnormally slow infiltration rate in mesoporous films
Fecha
2017-01Registro en:
Berli, Claudio Luis Alberto; Mercuri, Magalí; Bellino, Martin Gonzalo; Modeling the abnormally slow infiltration rate in mesoporous films; Royal Society of Chemistry; Physical Chemistry Chemical Physics; 19; 3; 1-2017; 1731-1734
1463-9076
CONICET Digital
CONICET
Autor
Berli, Claudio Luis Alberto
Mercuri, Magalí
Bellino, Martin Gonzalo
Resumen
Mesoporous films have been shown to exhibit striking behaviors in capillary-driven infiltration experiments. The process has been shown to follow classical Lucas–Washburn dynamics, but the effective pore radius has been calculated from hydrodynamic resistance considerations to be orders of magnitude lower than measured pore dimensions. In addition, the infiltration rate has been observed to decrease with increasing pore diameter, in contrast to the expected trend for capillary-like pores. Here, we present a simple model accounting for the mechanism behind these anomalous effects. We found the infiltration rate to be inversely proportional to the cubed ratio of pore to neck size. This physical scaling correctly modeled both the magnitude of the infiltration rate and its variation with pore diameters, for a wide range of experimental data. The model established a connection between capillary filling dynamics and nanoscale pore structure, which is of practical interest for the design and characterization of mesoporous films.