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High-Efficiency Generation-Collection Microelectrochemical Platform for Interrogating Electroactive Thin Films

机译:用于询问电活性薄膜的高效发电-收集微电化学平台

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Here we report on the development of a high-efficiency, dual channel-electrode (DCE) generation-collection system and its application for interrogating redox-active surface-adsorbed thin films. DCE systems consist of two electrodes configured on the base of a microfluidic channel. Under laminar flow conditions, a redox reaction can be driven on the upstream generator electrode, and the products carried by convection to the downstream collector electrode where the reverse redox reaction occurs. One significant outcome of this report is that simple fabrication techniques can be used to prepare DCE systems that have collection efficiencies of up to 97%. This level of efficiency makes it possible to quantitatively measure the charge associated with redox-active thin films interposed between the generator and collector electrodes. This is important, because it provides a means for interrogating species that are not in sufficiently close proximity to an electrode to enable direct electron transfer or electroactive films adsorbed to insulating surfaces. Here, the method is demonstrated by comparing results from this indirect surface interrogation method, using (Fe(CN)_6)~(3-) as the redox probe, and direct electroreduction of Au oxide thin films. These experimental results are further compared to finite-element simulations.
机译:在这里,我们报告高效的双通道电极(DCE)生成-收集系统的发展及其在询问氧化还原活性表面吸附薄膜中的应用。 DCE系统由配置在微流体通道底部的两个电极组成。在层流条件下,可以在上游发生器电极上驱动氧化还原反应,并且产物通过对流携带到下游集电极,在那里发生反向氧化还原反应。该报告的一项重要成果是,可以使用简单的制造技术来制备具有高达97%的收集效率的DCE系统。这种效率水平使得可以定量地测量与介于发生器电极和集电极之间的氧化还原活性薄膜相关的电荷。这很重要,因为它提供了一种方法来询问未充分靠近电极的物质,以使直接电子转移或吸附到绝缘表面的电活性膜成为可能。在此,通过比较这种间接表面询问方法的结果来证明该方法,该方法使用(Fe(CN)_6)〜(3-)作为氧化还原探针,并直接电还原Au氧化物薄膜。将这些实验结果进一步与有限元模拟进行比较。

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