首页> 外文期刊>Electrochimica Acta >Polymer microchip impedance spectroscopy through two parallel planar embedded microelectrodes: Understanding the impedance contribution of the surrounding polymer on the measurement accuracy
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Polymer microchip impedance spectroscopy through two parallel planar embedded microelectrodes: Understanding the impedance contribution of the surrounding polymer on the measurement accuracy

机译:通过两个平行的平面嵌入式微电极进行的聚合物微芯片阻抗谱:了解周围聚合物对测量精度的阻抗贡献

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The present work describes a new methodology for contact free impedance of a solution in a polymer microchip taking into account the role played by the surrounding polymer on the impedance accuracy. Measurements were carried out using a photoablated polyethylene terephthalate (PET) microchannel above two embedded microband electrodes. The impedance diagrams exhibit a loop from high frequencies to medium frequencies (1 MHz-100 Hz) and a capacitive behavior at low frequencies (100-1 Hz). The impedance diagrams were corrected by eliminating from the global microchip response the contribution of the impedance of the PET layer between the two microband electrodes. This operation enables a clear observation of the impedance in the microchannel solution, including the bulk solution contribution and the interfacial capacitance related to the surface roughness of the photoablated microchannel. Models for the impedance of solutions of varying conductivity showed that the capacitance of the polymer-solution interface can be modeled by a constant phase element (CPE) with an exponent of 0.5. The loop diameter was found to be proportional to the microchannel resistivity, allowing a cell constant around 4.93 × 10~5 m~(-1) in contactless microelectrodes configuration.
机译:本工作描述了一种新的方法,该方法考虑了周围的聚合物在阻抗精度上的作用,从而解决了聚合物微芯片中溶液的无接触阻抗问题。使用两个嵌入式微带电极上方的光烧蚀聚对苯二甲酸乙二醇酯(PET)微通道进行测量。阻抗图显示了从高频到中频(1 MHz-100 Hz)的环路以及在低频(100-1 Hz)的电容行为。通过从全局微芯片响应中消除两个微带电极之间的PET层的阻抗影响,可以校正阻抗图。该操作使得可以清楚地观察微通道溶液中的阻抗,包括本体溶液的贡献和与光烧蚀的微通道的表面粗糙度有关的界面电容。不同电导率溶液阻抗的模型表明,聚合物-溶液界面的电容可以用指数为0.5的恒定相元素(CPE)建模。发现回路直径与微通道电阻率成正比,在非接触式微电极配置中,允许电池常数约为4.93×10〜5 m〜(-1)。

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