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Path-programmable water droplet manipulations on an adhesion controlled superhydrophobic surface

机译:附着力控制的超疏水表面上的路径可编程水滴操作

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摘要

Here, we developed a novel and facile method to control the local water adhesion force of a thin and stretchable superhydrophobic polydimethylsiloxane (PDMS) substrate with micro-pillar arrays that allows the individual manipulation of droplet motions including moving, merging and mixing. When a vacuum pressure was applied below the PDMS substrate, a local dimple structure was formed and the water adhesion force of structure was significantly changed owing to the dynamically varied pillar density. With the help of the lowered water adhesion force and the slope angle of the formed dimple structure, the motion of individual water droplets could be precisely controlled, which facilitated the creation of a droplet-based microfluidic platform capable of a programmable manipulation of droplets. We showed that the platform could be used in newer and emerging microfluidic operations such as surface-enhanced Raman spectroscopy with extremely high sensing capability (10−15 M) and in vitro small interfering RNA transfection with enhanced transfection efficiency of ~80%.
机译:在这里,我们开发了一种新颖且简便的方法来控制具有微柱阵列的可拉伸超薄聚二甲基硅氧烷(PDMS)基板的局部水粘附力,该基板允许对液滴运动进行单​​独控制,包括移动,合并和混合。当在PDMS基板下方施加真空压力时,会形成局部的凹坑结构,并且由于柱体密度的动态变化,该结构的水附着力也发生了显着变化。借助于降低的水附着力和所形成的凹痕结构的倾斜角,可以精确地控制各个水滴的运动,这有助于创建能够对水滴进行可编程操作的基于水滴的微流体平台。我们证明该平台可用于更新和新兴的微流体操作,例如具有极高的传感能力(10 −15 M)的表面增强拉曼光谱和体外小干扰RNA转染,可提高转染效率〜80%。

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