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μtransparent insulating channels as components for miniaturized chemical separation devices

机译:μ透明绝缘通道作为小型化学分离装置的组件

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摘要

Currently, miniaturized devices that apply electro osmotic pumping or electrophoretic separations are mostly constructed by etching small insulating channels for supply and separation on glass substrates. In principle, silicon is a superior construction material in terms of inertness and design flexibility. However, because of its semiconducting properties, the use in high voltage applications like the ones mentioned above is quite limited. In this paper, the use of μTransparent Insulating Channel (μTIC) technology is demonstrated as a standard procedure to manufacture miniaturized analytical separation devices. This technique, μchannels having extremely thin, transparent and insulating walls can be fabricated. An overview of the impact of this technology is given, showing the advantages of a fabrication technology that is as flexible as silicon technology for the fabrication of μTAS or “lab on a chip” devices. The following basic technology and control parameters will be highlighted. 1. Up to 100 μm wide rectangular channels 2. Bosses and leak-free connections to external μ fluidics. 3. Web-like structures for inlets/outlets>100 μm. 4. Implementation of conductivity electrodes 5. Good thermal dissipation properties of the thin walls 6. Control of the electro osmotic flow by a radial voltage.
机译:目前,通过蚀刻用于在玻璃基板上的供应和分离的小绝缘通道来实现施加电渗透泵送或电泳分离的小型化装置。原则上,硅是惰性和设计灵活性方面的优越的施工材料。然而,由于其半导体特性,在高压应用中的用途,如上面提到的高压应用非常有限。在本文中,使用μTransperent绝缘通道(μTIC)技术作为制造小型化分析分离装置的标准程序。这种技术可以制造具有极薄,透明和绝缘壁的μ布兰克。给出了该技术的影响的概述,示出了制造技术的优点,其与硅技术一样灵活,用于制造μTAS或芯片上的实验室“装置。将突出以下基本技术和控制参数。 1.高达100μm宽矩形通道2.凸台和无泄漏连接到外部μ流体。 3.用于入口/插座的网状结构>100μm。 4.电导率电极5.薄壁的良好的散热性能6.通过径向电压控制电渗透流量。

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