基于纳米间隙的葡萄糖无酶电化学检测

Ismael Rattalino, P. Ros, I. Taurino, F. Cortés-Salazar, G. Piccinini, D. Demarchi, G. Micheli, S. Carrara
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摘要

尽管非酶葡萄糖传感器已经证明了比酶葡萄糖传感器更好的稳定性和可重复性,但到目前为止,它们还不适合大多数应用,因为它们需要碱性条件才能达到必要的灵敏度。在这项工作中,我们提出了一种基于金纳米间隙的非酶传感器,用于定位间隙内碱性条件的产生,从而在葡萄糖检测过程中保持培养基中的整体pH。工作原理是基于电化学双恒电位测量,其中在纳米间隙的一侧局部产生碱性水条件,而在对应的位置进行葡萄糖检测。为此,采用标准光刻和可控电迁移的方法制备了纳米隙阵列平台。在双恒电位模式下测定葡萄糖之前,成功地进行了抗坏血酸的单恒电位电化学检测,对平台进行了初步测试。循环伏安法显示两个氧化峰对葡萄糖浓度敏感,使纳米间隙葡萄糖检测在原则上成为可能。这一有希望的概念证明在生物应用中具有创新性,可植入设备或直接监测细胞培养,其中需要与活组织接触的中性pH值。进一步的几何改进系统,以增加传感器的耐用性目前仍在进行中,并在论文的最后部分简要讨论。
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Nanogap-based enzymatic-free electrochemical detection of glucose
Although non-enzymatic glucose sensors have demonstrated better stability and reproducibility with respect to enzymatic ones, so far they have been inappropriate for most applications, since they require alkaline conditions to achieve the necessary sensitivity. In this work, we propose a gold nanogap-based non-enzymatic sensor to localize the generation of alkaline conditions inside the gap, thus preserving the overall pH in the media during glucose detection. The working principle is based on an electrochemical bi-potentiostatic measurement, where an alkaline aqueous condition is locally generated at one side of nanogap, while glucose detection is performed at the counterpart. To this purpose, a nanogap array platform was fabricated by means of standard lithography and controlled electromigration. Mono-potentiostatic electrochemical detection of ascorbic acid was successfully performed to preliminary test the platform prior to measuring glucose in bi-potentiostatic mode. Cyclic voltammetries reveal that two oxidation peaks are sensitive to glucose concentration, making nanogap glucose detection possible in principle. This promising proof of concept could be innovative in bio-applications with implantable devices or direct monitoring of cell culture, where neutral pH in contact with living tissue is required. Further geometrical improvements of the system to increase the durability of the sensor are currently still in progress, and are briefly discussed in the final part of the paper.
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