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Published on: April 7, 2017
Molecular Dynamics Investigation of Oil Wetting on Synthetic Polymer Substrates
Hang Zhang1, Sahana V Sundar2, Shawn M Maguire2
1Department of Chemistry, Princeton University, Princeton, New Jersey 08540, United States.
None:
Understanding the interaction of polymer surfaces with nonpolar, low surface tension liquids, or whether a substrate is oleophobic versus oleophilic, is critical for applications ranging from antifingerprint coatings to oil-water separation membranes and oil spill remediation. Despite its technological importance, the molecular mechanisms underpinning polymer-oil wetting are not well characterized. Here, we employ molecular dynamics simulations to investigate the behavior of n-hexadecane in contact with chemically distinct polymer surfaces, spanning eight constitutional unit chemistries as well as amorphous and crystalline morphologies. This permits a critical examination of both thermodynamic and dynamic descriptors of oleophobicity, including oil contact angle, dewetting free energy, interfacial diffusivity, and a proposed "ghost probe energy," which does not require explicit simulation of oil-polymer interactions. We find that the oil contact angle does not reliably distinguish oleophobic behavior across polymer chemistries, whereas other metrics provide clearer and more consistent differentiation. Analysis of the results reveals that polymer-oil wetting behavior is primarily governed by interfacial van der Waals interactions and modulated by surface flexibility and morphology. Collectively, this work establishes a computational framework for characterizing oil wetting and provides additional insight into what molecular-level factors dictate trends in oleophobicity.

