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Cobalt hexacyanoferrate modified multi-walled carbon nanotubes/graphite composite electrode as electrochemical sensor on microfluidic chip

机译:铁氰化钴修饰的多壁碳纳米管/石墨复合电极作为微流控芯片上的电化学传感器

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摘要

Nanomaterial-based electrochemical sensor has received significant interest. In this work, cobalt hexacyanoferrate modified multi-walled carbon nanotubes/graphite composite electrode was electro-chemically prepared and exploited as an amperometric detector for microchip electrophoresis. The prepared sensor displayed rapid and sensitive response towards hydrazine and isoniazid oxidation, which was attributed to synergetic electrocatalytic effect of cobalt hexacyanoferrate and multi-walled carbon nanotubes. The sensitivity enhancement with nearly two orders of magnitude was gained, compared with the bare carbon paste electrode, with the detection limit of 0.91 μM (S/N = 3) for hydrazine. Acceptable repeatability of the microanalysis system was verified by consecutive eleven injections of hydrazine without chip and electrode treatments, the RSDs for peak current and migration time were 3.4% and 2.1%, respectively. Meanwhile, well-shaped electrophoretic peaks were observed, mainly due to fast electron transfer of electroactive species on the modified electrode. The developed microchip-electrochemistry setup was successfully applied to the determination of hydrazine and isoniazid in river water and pharmaceutical preparation, respectively. Several merits of the novel electrochemical sensor coupled with microfluidic platform, such as comparative stability, easy fabrication and high sensitivity, hold great potential for hydrazine compounds assay in the lab-on-a-chip system.
机译:基于纳米材料的电化学传感器已引起广泛关注。在这项工作中,电化学制备了六氰合铁酸钴修饰的多壁碳纳米管/石墨复合电极,并将其用作微芯片电泳的安培检测器。所制备的传感器显示出对肼和异烟肼氧化的快速而灵敏的响应,这归因于六氰合铁酸钴和多壁碳纳米管的协同电催化作用。与裸碳糊电极相比,灵敏度提高了近两个数量级,肼的检出限为0.91μM(S / N = 3)。通过连续十一次不使用芯片和电极处理的肼进样,验证了微分析系统的可接受的重复性,峰值电流和迁移时间的RSD分别为3.4%和2.1%。同时,观察到良好的电泳峰,这主要是由于电活性物质在修饰电极上的快速电子转移。所开发的微芯片电化学装置已成功地分别用于测定河水中和药物制剂中的肼和异烟肼。新型电化学传感器与微流体平台相结合的若干优点,例如比较稳定性,易于制造和高灵敏度,为在芯片实验室系统中进行肼化合物的测定提供了巨大潜力。

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