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用于非酶葡萄糖检测的具有可调孔隙率的电化学传感界面:以泡沫铜为例。

Electrochemical sensing interfaces with tunable porosity for nonenzymatic glucose detection: a Cu foam case.

机构信息

Shanghai Key Laboratory of Functional Materials Chemistry, and Research Centre of Analysis and Test, East China University of Science and Technology, Shanghai 200237, PR China.

出版信息

Biosens Bioelectron. 2014 Jan 15;51:22-8. doi: 10.1016/j.bios.2013.07.032. Epub 2013 Jul 22.

Abstract

It is widely thought in electro-biochemical analysis that the sensing interfaces play a key role in the enzymeless detection of biomolecules like glucose, ascorbic acid, dopamine and uric acid. On the way to maximize the anti-poisoning sensitivity of nonenzymatic electrochemical glucose sensors as well as achieve favorable selectivity, we propose here a porous interface fabricated by a facile but effective approach for glucose monitoring in alkaline media containing dissolved oxygen. The sensing interface based on porous Cu foams is directly formed on a homemade disposable screen-printed carbon electrode (SPCE) substrate by electrodeposition assisted with hydrogen evolution simultaneously, and its porosity can be easily tailored through adjusting deposition conditions for the optimal electrocatalytic oxidation of glucose molecules. SEM and BET studies show that the generated Cu foam possesses robust hierarchical porous architectures with greatly enhanced surface area and pore volume, beneficial for the unimpeded mobility of glucose and reaction products. Cyclic voltammetric tests indicate that a diffusion-controlled glucose electro-oxidation reaction occurs at the Cu foam electrode at around +0.35 V vs. Ag/AgCl in 0.1 M NaOH. Chronoamperometric results obtained under optimized conditions reveal that the proposed sensor exhibits desired poison resistance ability in the presence of chloride ions and significant selectivity to glucose, providing fascinating sensitivities of 2.57 and 1.81 mA cm(-2) mM(-1) for glucose in the linear concentration ranges of 2-80 μM and 0.1-5 mM, respectively. The limit of detection is calculated to be as low as 0.98 μM according to the signal-to-noise ratio of three. In addition, the fabricated sensing interface shows attractive reproducibility (RSD of 5.1% and 7.0% for 15 repeated measurements on a sensor and for measurements on 15 prepared sensors, respectively) and outstanding long-term stability (less than 5% loss in sensitivity over 1 month) for glucose detection. The application of the Cu foam based sensor for monitoring glucose in practical samples is also successfully demonstrated.

摘要

在电生化分析中,人们普遍认为传感界面在无酶检测生物分子(如葡萄糖、抗坏血酸、多巴胺和尿酸)方面起着关键作用。在最大限度地提高非酶电化学葡萄糖传感器的抗中毒灵敏度并实现良好的选择性的过程中,我们在这里提出了一种在含有溶解氧的碱性介质中用于葡萄糖监测的多孔界面,该界面是通过一种简单但有效的方法制备的。基于多孔 Cu 泡沫的传感界面是通过电沉积辅助析氢同时直接在自制的一次性丝网印刷碳电极 (SPCE) 基底上形成的,并且可以通过调整沉积条件轻松地调整其多孔性,以实现葡萄糖分子的最佳电催化氧化。SEM 和 BET 研究表明,生成的 Cu 泡沫具有坚固的分级多孔结构,具有大大增强的表面积和孔体积,有利于葡萄糖和反应产物的无阻移动。循环伏安测试表明,在 0.1 M NaOH 中,Cu 泡沫电极在约 +0.35 V 相对于 Ag/AgCl 处发生扩散控制的葡萄糖电氧化反应。在优化条件下获得的计时电流测试结果表明,在存在氯离子的情况下,所提出的传感器具有令人满意的抗毒性能力,并且对葡萄糖具有显著的选择性,在 2-80 μM 和 0.1-5 mM 的线性浓度范围内分别提供了 2.57 和 1.81 mA cm(-2) mM(-1)的诱人灵敏度。根据信噪比计算,检测限低至 0.98 μM,为 3。此外,所制备的传感界面在葡萄糖检测方面表现出吸引人的重现性(在传感器上进行 15 次重复测量的 RSD 为 5.1%,在 15 个制备的传感器上的 RSD 为 7.0%)和出色的长期稳定性(在 1 个月内灵敏度损失小于 5%)。还成功地证明了基于 Cu 泡沫的传感器在实际样品中监测葡萄糖的应用。

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