基于玻璃纤维过滤器的微流控大功率电渗泵

IF 2.2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Rafael Ecker;Tina Mitteramskogler;Andreas Fuchsluger;Bernhard Jakoby
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引用次数: 0

摘要

在流体-固体界面的几个原子层中会出现一种被称为电双层效应的表面现象。通过施加外部电场,这种现象被用于产生流体流动,即所谓的电渗,以及相应的设备电渗泵(EOPs)。为了大大增加流体与固体的接触面,从而增加产生所需流体流量的流体体积,本信介绍了一种在主通道中采用玻璃纤维过滤器的 EOP。因此,我们的 EOP 可以达到高达 400 kPa 的高压和每分钟毫升的高流量。所设计的技术通过使用聚甲基丙烯酸甲酯基底和主要基于热的制造工艺,实现了低成本的 EOP 制造。为了应对电解产生的杂散气体带来的挑战,这种 EOP 使用离子导电膜将不需要的电解过程阻隔在通道之外。为了承受高侵蚀性化学反应,EOP 还采用了铂丝作为电极。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidic High-Power Electroosmotic Pumps Based on Glass Fiber Filters
A surface phenomenon known as the electric double layer effect occurs in a few atomic layers at the fluid–solid interface. By applying an external electric field, this phenomenon is used to generate a fluidic flow, which is called electroosmosis, and the corresponding device electroosmotic pumps (EOPs). In order to immensely increase the fluid–solid contact surface and, consequently, the fluid volume that generates the desired fluidic flow, an EOP employing a glass fiber filter in the main channel is presented in this letter. As a result, our EOP can reach high pressures of up to 400 kPa as well as high flow rates up to the milliliter per minute range. The devised technology enables low-cost EOP fabrication by using a polymethyl methacrylate substrate and mostly thermal-based fabrication processes. In order to address the challenges associated with spurious gas generation due to electrolysis, this EOP uses ion conductive membranes to keep the unwanted electrolysis process outside of the channel. To endure highly aggressive chemical reactions, platinum wires are furthermore employed as electrodes in the EOPs.
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来源期刊
IEEE Sensors Letters
IEEE Sensors Letters Engineering-Electrical and Electronic Engineering
CiteScore
3.50
自引率
7.10%
发文量
194
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