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Flow field effect transistors with polarisable interface for EOF tunable microfluidic separation devices

机译:具有可极化界面的流场效应晶体管,用于EOF可调谐微流体分离装置

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摘要

A method is proposed to control the zeta potential in microchannels using electrically polarisable interfaces in direct contact with the electrolyte. The approach is based on the use of conducting layers exhibiting minimal electrochemical reactions with aqueous electrolytes but a large potential window (typically from —2 V to +2 V) enabling tuning their zeta potential without detrimental faradic reactions. SiC, Al and CN_x interfaces were deposited on glass surfaces and then integrated into glass-PDMS-glass devices. The effect of the zeta potential control was monitored by measuring the electro-osmotic flow using a microfhiidic Wheatstone Bridge. The experimental results are in good agreement with theoretical predictions based on a one dimensional modeling. The electro-osmotic flow control obtained at high pH values suggests that it should be possible to use such devices as Polarisable Interface Flow-Field Effect Transistors (PI-FFETs) to overcome the difficulties met with conventional metal-isolator-electrolyte systems (MIE-FFETs) for electrokinetic separation applications.
机译:提出了一种使用与电解质直接接触的可电极化界面来控制微通道中的ζ电位的方法。该方法基于使用导电层,该导电层表现出与水性电解质的最小电化学反应,但具有大的电位窗口(通常从-2 V至+2 V),从而可以调节其zeta电位而无不利的法拉第反应。 SiC,Al和CN_x界面沉积在玻璃表面上,然后集成到玻璃PDMS-玻璃设备中。通过使用微流体惠斯通电桥测量电渗流来监测ζ电势控制的效果。实验结果与基于一维模型的理论预测非常吻合。在高pH值下获得的电渗流控制表明,应该有可能使用诸如可极化界面流场效应晶体管(PI-FFET)之类的设备来克服常规金属隔离器-电解质系统(MIE- FFET),用于电动分离应用。

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