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Three-Dimensional Fractal Geometry for Gas Permeation in Microchannels

机译:用于微通道气体渗透的三维分形几何

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摘要

The novel concept of a microfluidic chip with an integrated three-dimensional fractal geometry with nanopores, acting as a gas transport membrane, is presented. The method of engineering the 3D fractal structure is based on a combination of anisotropic etching of silicon and corner lithography. The permeation of oxygen and carbon dioxide through the fractal membrane is measured and validated theoretically. The results show high permeation flux due to low resistance to mass transfer because of the hierarchical branched structure of the fractals, and the high number of the apertures. This approach offers an advantage of high surface to volume ratio and pores in the range of nanometers. The obtained results show that the gas permeation through the nanonozzles in the form of fractal geometry is remarkably enhanced in comparison to the commonly-used polydimethylsiloxane (PDMS) dense membrane. The developed chip is envisioned as an interesting alternative for gas-liquid contactors that require harsh conditions, such as microreactors or microdevices, for energy applications.
机译:提出了具有集成的具有纳米孔的三维分形几何形状的微流控芯片的新概念,该微流控芯片充当气体传输膜。设计3D分形结构的方法是基于硅的各向异性蚀刻和角落光刻的组合。氧气和二氧化碳透过分形膜的渗透率经过测量并得到了理论验证。结果表明,由于分形的分层分支结构和高数量的孔,由于对传质的抵抗力低,所以渗透通量较高。该方法具有高的表面体积比和纳米范围内的孔的优点。获得的结果表明,与常用的聚二甲基硅氧烷(PDMS)致密膜相比,分形几何形式的气体通过纳米喷嘴的渗透显着增强。预计开发的芯片将成为气液接触器的一种有趣替代品,这种接触器需要在恶劣条件下进行能源应用,例如微型反应器或微型设备。

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