Department of Engineering Science and Materials Research Institute, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Nat Mater. 2010 Dec;9(12):1023-8. doi: 10.1038/nmat2864. Epub 2010 Oct 10.
Anisotropic textured surfaces allow water striders to walk on water, butterflies to shed water from their wings and plants to trap insects and pollen. Capturing these natural features in biomimetic surfaces is an active area of research. Here, we report an engineered nanofilm, composed of an array of poly(p-xylylene) nanorods, which demonstrates anisotropic wetting behaviour by means of a pin-release droplet ratchet mechanism. Droplet retention forces in the pin and release directions differ by up to 80 μN, which is over ten times greater than the values reported for other engineered anisotropic surfaces. The nanofilm provides a microscale smooth surface on which to transport microlitre droplets, and is also relatively easy to synthesize by a bottom-up vapour-phase technique. An accompanying comprehensive model successfully describes the film's anisotropic wetting behaviour as a function of measurable film morphology parameters.
各向异性织构表面使水黾可以在水面上行走,蝴蝶可以从翅膀上甩掉水,植物可以捕捉昆虫和花粉。在仿生表面中捕捉这些自然特征是一个活跃的研究领域。在这里,我们报告了一种工程化的纳米薄膜,它由聚对二甲苯纳米棒的阵列组成,通过销释放液滴棘轮机构表现出各向异性的润湿行为。销和释放方向上的液滴保持力相差高达 80 μN,这比其他工程化各向异性表面报道的值大十倍以上。该纳米薄膜在其上输送微升液滴的微观表面光滑,并且也相对容易通过自下而上的气相技术合成。一个配套的全面模型成功地描述了薄膜的各向异性润湿行为,作为可测量的薄膜形态参数的函数。