Scarratt Liam R J, Zhu Liwen, Neto Chiara
School of Chemistry and the University of Sydney Nano Institute , The University of Sydney , Sydney , New South Wales 2006 , Australia.
Langmuir. 2019 Feb 26;35(8):2976-2982. doi: 10.1021/acs.langmuir.8b03767. Epub 2019 Feb 15.
Lubricant-infused surfaces have attracted great attention recently and are described as slippery liquid-infused porous surfaces (SLIPS). Here, we measured the hydrodynamic drainage forces on SLIPS by colloid probe atomic force microscopy (AFM) and quantified the effective slip length over a nanothin silicone oil layer on hydrophobized [octadecyltrichlorosilane (OTS)-coated] silicon wafers. The thickness of a stable silicone oil film on OTS-Si under sucrose solution was determined to be 1.8 ± 1.3 nm and was found to induce an average effective slip length of 29 ± 3 nm, very close to that of an uninfused OTS substrate. These relatively low values of effective slip are confirmed by the relatively large macroscopic roll-off angle values of water droplets on the same substrates. Both nano- and macroscale results reflect the immobilized nature of a silicone oil layer of thickness around 2 nm within an underlying monolayer. These results have important implications in the design of drag-reducing coatings using lubricant infusion.
注入润滑剂的表面最近引起了极大关注,被描述为注入滑液的多孔表面(SLIPS)。在此,我们通过胶体探针原子力显微镜(AFM)测量了SLIPS上的流体动力排水力,并量化了疏水化(十八烷基三氯硅烷(OTS)涂层)硅片上纳米薄硅油层的有效滑移长度。确定了蔗糖溶液下OTS-Si上稳定硅油膜的厚度为1.8±1.3 nm,并发现其诱导的平均有效滑移长度为29±3 nm,与未注入的OTS基底非常接近。相同基底上水滴相对较大的宏观滚落角值证实了这些相对较低的有效滑移值。纳米和宏观尺度的结果都反映了底层单分子层内厚度约为2 nm的硅油层的固定性质。这些结果对使用润滑剂注入的减阻涂层设计具有重要意义。