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用于非酶电化学葡萄糖传感的纳米结构氧化镍电极。

Nanostructured nickel oxide electrodes for non-enzymatic electrochemical glucose sensing.

机构信息

National Research Council Canada - Nanotechnology Research Centre, 11421 - Saskatchewan Drive, Edmonton, AB, T6G 2M9, Canada.

Department of Mechanical Engineering, University of Alberta, Edmonton, AB, T6G 1H9, Canada.

出版信息

Mikrochim Acta. 2020 Mar 3;187(4):196. doi: 10.1007/s00604-020-4171-5.

Abstract

Nanostructured nickel (Ni) and nickel oxide (NiO) electrodes were fabricated on Ni foils using the glancing angle deposition (GLAD) technique. Cyclic voltammetry and amperometry showed the electrodes enable non-enzymatic electrochemical determination of glucose in strongly alkaline media. Under optimized conditions of NaOH concentration and working potential (~ 0.50 V vs. Ag/AgCl), the GLAD electrodes performed far better than bare Ni foil electrodes, with the GLAD NiO electrode showing an outstanding sensitivity (4400 μA mM cm), superior detection limit (7 nM), and wide dynamic range (0.5 μM-9 mM), with desirable selectivity and reproducibility. Based on their performance at a low concentration, the GLAD NiO electrodes were also used to quantify glucose in artificial urine and sweat samples which have significantly lower glucose levels than blood. The GLAD NiO electrodes showed negligible response to the common interferents in glucose measurement (uric acid, dopamine, serotonin, and ascorbic acid), and they were not poisoned by high amounts of sodium chloride. Graphical abstract The figures depict (A) SEM image of vertical post-GLAD NiO electrodes used for non-enzymatic electrochemical glucose monitoring, and (B) calibration plots of the three different electrodes.

摘要

采用掠角沉积(GLAD)技术在镍箔上制备了纳米结构镍(Ni)和氧化镍(NiO)电极。循环伏安法和安培法表明,这些电极可在强碱性介质中实现非酶电化学葡萄糖测定。在 NaOH 浓度和工作电位(~0.50 V 对 Ag/AgCl)的优化条件下,GLAD 电极的性能远优于裸镍箔电极,其中 GLAD NiO 电极表现出出色的灵敏度(4400 μA mM cm)、优越的检测限(7 nM)和宽动态范围(0.5 μM-9 mM),具有良好的选择性和重现性。基于其在低浓度下的性能,GLAD NiO 电极还用于定量分析人工尿液和汗液样本中的葡萄糖,这些样本中的葡萄糖水平明显低于血液。GLAD NiO 电极对葡萄糖测定中的常见干扰物(尿酸、多巴胺、血清素和抗坏血酸)几乎没有响应,并且不会被大量氯化钠中毒。

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