arXiv · 2103.16855
Breaking Cassie's law for condensation in a nano-patterned slit
Abstract
We study the phase transitions of a fluid confined in a capillary slit made from two adjacent walls each of which are a periodic composite of stripes of two different materials. For wide slits the capillary condensation occurs at a pressure which is described accurately by a combination of the Kelvin equation and the Cassie law for an averaged contact angle. However, for narrow slits the condensation occurs in two steps involving an intermediate bridging phase, with the corresponding pressures described by two new Kelvin equations. These are characterised by different contact angles due to interfacial pinning, with one larger and one smaller than the Cassie angle. We determine the triple point and predict two types of dispersion force induced Derjaguin-like corrections due to mesoscopic volume reduction and the singular free-energy contribution from nano-droplets and bubbles. We test these predictions using a fully microscopic density functional model which confirms their validity even for molecularly narrow slits. Analogous mesoscopic corrections are also predicted for two dimensional systems arising from thermally induced interfacial wandering.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Martin Láska, Andrew O. Parry, Alexandr Malijevský. 2021-03-31. Breaking Cassie's law for condensation in a nano-patterned slit. https://doi.org/10.1103/physrevlett.126.125701
Cite the original work for its findings. Save a collection to share your selection of sources.