Early-time wetting kinetics in surface-directed spinodal decomposition for off-critical quenches: A molecular dynamics study
arXiv:2408.08800
Abstract
We present results from the molecular dynamics (MD) simulation of surface-directed spinodal decomposition (SDSD) in binary fluid mixtures () with off-critical compositions. The aim is to elucidate the role of composition ratio in the early-time wetting kinetics under the influence of long-range surface potential. In our simulations, the attractive part of surface potential varies as , with being the surface-potential strength. The surface prefers `' species to form the wetting layer. Its thickness [] for the majority wetting (number of -type particles [] > number of -type particles []), grows as a power-law with an exponent . This is consistent with the early-time kinetics in the form of potential-dependent growth present in the Puri-Binder model. However, for minority wetting ( < ), the growth exponent in is less than . Furthermore, on decreasing the field strength , we recover for a minority wetting case. We provide phenomenological arguments to explain the early-time wetting kinetics for both cases.
11 pages, 7 figures