Capillary instabilities in thin films. II. Kinetics
- 1 July 1986
- journal article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 60 (1) , 255-260
- https://doi.org/10.1063/1.337691
Abstract
We consider the kinetic evolution of perturbations to thin films. Since all small (nonsubstrate intersecting) perturbations to the film surface decay, we consider the evolution of large perturbations, in the form of a single hole which exposes the substrate. For large holes, the hole radius increases at a constant rate under the assumption of evaporation/condensation kinetics. When the dominant transport mode is surface diffusion, large holes grow with a rate proportional to t−3/4[log3(t/ ρ4c) ]. Small holes with a radii less than ρc shrink, where ρc is the film thickness divided by the tangent of the equilibrium wetting angle. The growth of these holes eventually leads to hole impingement which ruptures the film, creating a set of disconnected islands. The relaxation time for these islands to go to their equilibrium shape and size ( ρeq) scales as ρ2eq or ρ4eq for evaporation/condensation or surface diffusion kinetics, respectively.This publication has 5 references indexed in Scilit:
- Capillary instabilities in thin films. I. EnergeticsJournal of Applied Physics, 1986
- Conflicts between Gibbsian Thermodynamics and Recent Treatments of Interfacial Energies in Solid-Liquid-VaporThe Journal of Physical Chemistry, 1959
- Flattening of a Nearly Plane Solid Surface due to CapillarityJournal of Applied Physics, 1959
- Theory of Thermal GroovingJournal of Applied Physics, 1957
- On The Instability Of JetsProceedings of the London Mathematical Society, 1878