Choi Chang-Hwan, Kim Chang-Jin C J
Department of Mechanical Engineering, Stevens Institute of Technology, Hoboken, New Jersey 07030, USA.
Langmuir. 2009 Jul 7;25(13):7561-7. doi: 10.1021/la803614h.
Evaporation of liquids on substrates is important for many applications including lab-on-a-chip, especially when they are in droplets. Unlike on planar substrates, droplet evaporation on micropatterned substrates has been studied only recently and none so far on nanopatterns. Driven by the applicability of nanostructured surfaces to biomaterials and tissue engineering, we report on the evaporative process of sessile droplets of pure water and a protein solution on superhydrophobic surfaces of sharp-tip post structures in a submicrometer pitch (230 nm) and varying heights (100-500 nm). We find that the nanotopographical three-dimensionalities such as structural height and sidewall profile affect the surface superhydrophobicity in such a way that only tall and slender nanostructures provide the surface with great superhydrophobicity (a contact angle more than 170 degrees). The evaporation process was different between the pure water and the protein solution; unlike pure water, a significant contact-line spreading and pinning effect was observed in a droplet of a protein solution with an intermediate transition from a dewetting (Cassie) to a wetting (Wenzel) state. Enabled by well-defined nanostructures, our results highlight that the surface superhydrophobicity and the droplet evaporation are significantly affected by the three-dimensional nanometric topography and the surface fouling such as protein adsorption.
液体在基底上的蒸发对于包括芯片实验室在内的许多应用都很重要,尤其是当它们以液滴形式存在时。与在平面基底上不同,微图案化基底上的液滴蒸发直到最近才被研究,而到目前为止纳米图案上的液滴蒸发还没有相关研究。受纳米结构表面在生物材料和组织工程中的适用性驱动,我们报告了纯水和蛋白质溶液的固着液滴在亚微米间距(230纳米)和不同高度(100 - 500纳米)的尖顶柱状超疏水表面上的蒸发过程。我们发现,诸如结构高度和侧壁轮廓等纳米拓扑三维结构会以这样一种方式影响表面超疏水性,即只有高大细长的纳米结构才能使表面具有很强的超疏水性(接触角大于170度)。纯水和蛋白质溶液的蒸发过程有所不同;与纯水不同,在蛋白质溶液的液滴中观察到了明显的接触线扩展和钉扎效应,且存在从去湿(Cassie)到润湿(Wenzel)状态的中间转变。基于明确的纳米结构,我们的结果表明,表面超疏水性和液滴蒸发受到三维纳米形貌以及诸如蛋白质吸附等表面污染的显著影响。