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首页> 外文期刊>Lab on a chip >A microchip fabricated with a vapor-diffusion self-assembled-monolayer method to transport droplets across superhydrophobic to hydrophilic surfaces
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A microchip fabricated with a vapor-diffusion self-assembled-monolayer method to transport droplets across superhydrophobic to hydrophilic surfaces

机译:用气相扩散自组装单层方法制造的微芯片,可将液滴从超疏水性转移到亲水性表面

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摘要

A wettability gradient to transport a droplet across superhydrophobic to hydrophilic surfaces is fabricated on combining a structure gradient and a self-assembled-monolayer (SAM) gradient. The combination of these two gradients is realized with a simple but versatile SAM technique, in which the textured silicon wafer strip is placed vertically in a bottle that contains a decyltrichlorosilane solution to form concurrently a saturated SAM below the liquid surface and a wettability gradient above. The platform fabricated in this way has a water-contact angle from 151.2° to 39.7°; the self-transport distance is hence increased significantly to about 9 mm. A theoretical model that approximates the shape of a moving drop to a spheroidal cap is developed to predict the self-transport behavior. Satisfactory agreement is shown for most regions except where the hysteresis effect is unmeasurable and an unsymmetrical deformation occurs. A double-directional gradient surface to alter the direction of movement of a droplet is also realized. The platforms we developed serve not only to transport a fluid over a long distance but also for a broad spectrum of biomedical applications such as protein adsorption, cell adhesion and DNA-based biosensors.
机译:通过结合结构梯度和自组装单分子层(SAM)梯度,制造了将液滴跨过超疏水性迁移至亲水性表面的润湿性梯度。这两个梯度的组合是通过简单但通用的SAM技术实现的,其中将纹理化的硅晶片条垂直放置在一个装有癸基三氯硅烷溶液的瓶子中,以同时在液体表面以下形成饱和SAM,在上面形成可湿性梯度。以这种方式制造的平台具有151.2°至39.7°的水接触角。自运输距离因此显着增加到大约9毫米。建立了一个理论模型,该模型近似于将运动液滴的形状变成球形盖,以预测自运输行为。对于大多数区域显示令人满意的一致性,除了无法测量的磁滞效应和发生不对称变形的区域。还实现了改变液滴运动方向的双向梯度表面。我们开发的平台不仅可用于长距离输送流体,而且还可用于多种生物医学应用,例如蛋白质吸附,细胞粘附和基于DNA的生物传感器。

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