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Role of SAM Chain Length in Enhancing the Sensitivity of Nanopillar Modified Electrodes for Glucose Detection

机译:SAM链长在增强纳米柱修饰的葡萄糖检测电极灵敏度中的作用

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摘要

In this report, alkanethiol self assembled monolayers (SAM) with two different chain lengths were used to immobilize the functionalizing enzyme (glucose oxidase) onto gold nanopillar modified electrodes and the electrochemical processes of these functionalized electrodes in glucose detection were investigated. First, the formation of these SAMs on the nanopillar modified electrodes was characterized by the cyclic voltammetry and electrochemical impedance spectroscopy techniques, and then the detection sensitivity of these functionalized electrodes to glucose was evaluated by the amperometry technique. Results showed that the SAM of alkanethiols with a longer chain length resulted in a higher degree of surface coverage with less defect and a higher electron transfer resistance, whereas the SAM of alkanethiols with a shorter chain length gave rise to a higher detection sensitivity to glucose. This study sheds some new insight into how to enhance the sensing performance of nanopillar modified electrodes.
机译:在此报告中,使用具有两个不同链长的链烷硫醇自组装单分子层(SAM)将功能化酶(葡萄糖氧化酶)固定在金纳米柱修饰的电极上,并研究了这些功能化电极在葡萄糖检测中的电化学过程。首先,通过循环伏安法和电化学阻抗谱技术表征了这些SAM在纳米柱修饰电极上的形成,然后通过安培法评估了这些功能化电极对葡萄糖的检测敏感性。结果表明,链长较长的链烷硫醇的SAM导致较高的表面覆盖度,缺陷少,电子转移阻力较高,而链长较短的链烷硫醇的SAM对葡萄糖的检测灵敏度更高。这项研究为如何增强纳米柱修饰电极的传感性能提供了一些新见识。

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