Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
594096 | Colloids and Surfaces A: Physicochemical and Engineering Aspects | 2012 | 7 Pages |
Many studies have shown that surface roughness affects the adhesion and friction forces. One effective approach of reducing adhesion and friction forces between contacting interfaces is to create textured surfaces or surface modification, which is especially beneficial for micro/nano systems (e.g. MEMS/NEMS) that normally have smooth surfaces and are subjected to small applied forces. This paper presents the results of adhesion and friction studies on the ordered polystyrene microsphere-patterned surfaces (MSPS) with two types of patterned asperities fabricated by the spin-coating technique. A 1-Octadecanethiol (ODT) self-assembled monolayer was deposited on the MSPS to study the effect of hydrophobic coating on the adhesion and friction of patterned surfaces. The morphologies of MSPS were characterized by atomic force microscope (AFM) and field emission scanning electron microscope (FESEM). The adhesion and friction on the MSPS were studied by AFM using a colloidal probe. The results show that the micro-patterned surfaces have effectively reduced adhesion and friction compared to the flat surface because of the reduction of the contact area between contacting interfaces. Introducing a hydrophobic film to the microsphere-patterned surface can further reduce the adhesion and friction forces due to the reduction of meniscus-mediated adhesion and friction between interacting bodies.
Graphical abstractSurface patterning plays the dominative role in reducing the adhesive force than the hydrophobic modification. The reduction in COF for ODT modification is more prominent than that for surface patterning.Figure optionsDownload full-size imageDownload as PowerPoint slideHighlights► Surface patterning plays a dominative role in reducing the adhesion. ► Surface hydrophobic-modification can reduce the coefficient of friction. ► The patterned hydrophobic surface achieves the best performances.