Modulation of substrate van der Waals forces using varying thicknesses of polymer overlayers

范德瓦尔斯力 涂层 材料科学 聚合物 基质(水族馆) 哈梅克常数 覆盖层 薄膜 胶体 表面力仪 化学物理 表面光洁度 复合材料 表面粗糙度 纳米技术 化学 范德瓦尔斯半径 分子 物理化学 海洋学 地质学 有机化学
作者
Hongfang Wang,Drew Evans,Nicolas H. Voelcker,Hans J. Griesser,Laurence Meagher
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:580: 690-699 被引量:4
标识
DOI:10.1016/j.jcis.2020.07.035
摘要

Thin polymeric coatings are commonly used for altering surface properties and modulating the interfacial performance of materials. Possible contributions from the substrate to the interfacial forces and effects are, however, usually ignored and are not well understood, nor is it established how the coating thickness modulates and eventually eliminates contributions from substrates to the van der Waals (vdW) interfacial force. In this study we quantified, by colloid-probe atomic force microscope (AFM) and by theoretical calculations, the interfacial vdW contributions from substrates acting through ethanol plasma polymer (EtOHpp) coatings of a range of thicknesses on Au and Si bulk materials. In approach force curves against EtOHpp-coated Au substrates the magnitude of the vdW force decreased as the EtOHpp coating thickness increased to 18 nm and then plateaued with further increases in coating thickness, providing direct evidence for a contribution to the total interfacial vdW force from the Au substrate acting through thin coatings. The experimental observations accord with theoretical calculations of the thickness dependence of Hamaker coefficients derived from rigorous simulation using the Lifshitz theory. In addition, the measured forces agree well with theoretical predictions including correction for finite roughness. Thus, our experimental and theoretical results establish how the thickness of polymer thin film coatings modulates the total interfacial vdW force and how this can be used to tune the net vdW force so as to either contain a large substrate contribution or arise predominantly from the polymeric overlayer. Our findings enable rational design of coating thickness to tailor interfacial interactions and material performance.
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