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首页> 外文期刊>Microelectronic Engineering >Hierarchical micro and nano structured, hydrophilic, superhydrophobic and superoleophobic surfaces incorporated in microfluidics, microarrays and lab on chip microsystems
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Hierarchical micro and nano structured, hydrophilic, superhydrophobic and superoleophobic surfaces incorporated in microfluidics, microarrays and lab on chip microsystems

机译:微流体,微阵列和芯片实验室微系统中包含的分层微米和纳米结构,亲水性,超疏水性和超疏油性表面

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摘要

Control of wetting properties at the extremes of wetting states (superhydrophilic and superhydrophobic) is important for many applications, such as self-cleaning, anti-fogging, anti-icing, and antibacterial action. While significant effort has been devoted to develop and characterize such open surfaces for various applications, their incorporation in sensors, microfluidics, and labs on chip, offers new functional devices and systems, and poses different requirements compared to open-area surfaces. In this paper, dedicated to the 30 year anniversary of Microelectronic Engineering, we aim to review the extreme wetting states of surfaces, their fabrication processes focusing on plasma processing technology, and their incorporation into devices and systems. We start with an introduction and terminology for superhydrophilic, superhydrophobic, and superoleophobic surfaces, and continue with a review of the fabrication of such surfaces by plasma processing. We then review how such surfaces are incorporated in microdevices and microsystems, and their applications. We address (a) Hydrophilic capillary pumps and superhydrophobic valves, (b) Drag reduction in superhydrophobic microchannels and slip length increase, (c) Superhydrophobic surfaces for drdplet manipulation, applied to chemical and biological analysis, (d) Biomolecule adsorption control on nanostructured surfaces, and (e) Cell adhesion on such surfaces. Finally, we conclude with perspectives and challenges.
机译:在润湿状态(超亲水性和超疏水性)的极端情况下,控制润湿性能对于许多应用非常重要,例如自清洁,防雾,防冰和抗菌作用。尽管已经投入大量精力来开发和表征用于各种应用的此类开放表面,但它们与传感器,微流体和芯片实验室的结合,提供了新的功能设备和系统,并且与开放区域表面相比提出了不同的要求。在这篇致力于微电子工程30周年的论文中,我们旨在研究表面的极端润湿状态,着重于等离子处理技术的制造工艺以及它们在设备和系统中的结合。我们从超亲水性,超疏水性和超疏油性表面的介绍和术语开始,然后继续回顾通过等离子处理制造此类表面的过程。然后,我们回顾如何将此类表面整合到微设备和微系统中以及它们的应用。我们致力于(a)亲水性毛细管泵和超疏水阀,(b)超疏水微通道的减阻作用和滑移长度的增加,(c)用于滴液处理的超疏水表面,用于化学和生物学分析,(d)纳米结构表面上的生物分子吸附控制(e)细胞在此类表面上的粘附。最后,我们总结了观点和挑战。

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