Molecularly informed field-theoretic models of confined fluids
Abstract
Complex fluids in confined geometries are found in numerous applications, including membranes, lubricants, and microelectronics. However, current computational approaches for studying these systems have a variety of shortcomings. Particle-based simulations are limited in accessible length and time scales, while the interaction parameters in field-theoretic approaches have no direct connections to specific chemistries. Here, we extend a multiscale framework that we earlier developed for bulk systems to address these challenges in confined polymer formulations. The methodology uses atomistic molecular dynamics simulations to parameterize coarse-grained field-theoretic models of confined fluids, which subsequently enable fast equilibration and the ability to surmount length scales inaccessible to particle-based simulation methods. We first use this workflow to study a model system consisting of a confined Gaussian fluid to validate and determine best practices for the coarse-graining methodology. Next, we demonstrate this methodology by applying it to an alkyl acrylic diblock copolymer and dodecane solution confined between α-iron oxide surfaces and examining the effect of diblock concentration and length on the structure of the adsorbed film. This approach has the potential to expedite the study of complex fluids in confined environments, bridging atomistic detail and mesoscale modeling with broad implications for materials design.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (4)
Charles Li
Department of Chemical Engineering, University of California 1 , Santa Barbara, California 93106,
Kris T. Delaney
Materials Research Laboratory, University of California 2 , Santa Barbara, California 93106,
M. Scott Shell
Department of Chemical Engineering, University of California
Glenn H. Fredrickson
Materials Research Laboratory, University of California 1 , Santa Barbara, California 93106,