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一种在碳纳米纤维上制备具有分级结构的 NiCoS 纳米花瓣的简便方法,以增强非酶葡萄糖氧化。

A facile method for the fabrication of hierarchically structured NiCoS nanopetals on carbon nanofibers to enhance non-enzymatic glucose oxidation.

机构信息

Department of Energy and Materials Engineering, Dongguk University-Seoul, Seoul, 100-715, Republic of Korea.

Department of Biological Engineering, NanoBio High-Tech Materials Research Center, Inha University, Incheon, 402-751, Republic of Korea.

出版信息

Mikrochim Acta. 2021 Mar 2;188(3):106. doi: 10.1007/s00604-021-04749-6.

DOI:10.1007/s00604-021-04749-6
PMID:33651208
Abstract

Unique NiCoS-carbon nanofiber (CNF) composite nanostructures were fabricated using a simple electrospinning-assisted hydrothermal route and used for the rapid and accurate electrochemical oxidation of glucose in real samples at the trace level. Electrochemical impedance spectroscopy and cyclic voltammetry of unmodified and modified electrodes revealed low charge-transfer resistance and the excellent electrocatalytic sensing of glucose when using the NiCoS-CNF at a low potential due to the combined benefits of the highly conductive NiCoS anchored to the large surface area of the CNFs. Amperometric analysis of the fabricated sensor has shown an extremely low limit of detection (0.25 nM) and a large linear range (5-70 nM) for glucose at a working potential of 0.54 V (vs. Hg/HgO). The practicability of the NiCoS-CNF for use in glucose determination was tested withl human saliva, blood plasma, and fruit juice samples. The NiCoS-CNF/GCE showed acceptable recovery values for human saliva (99.1-100.8%), blood plasma (98.6-101.5%), and fruit juice (95.1-105.7%) samples. The proposed sensor also exhibited outstanding electroanalytical characteristics for glucose oxidation in these samples, including reusability, repeatability, and interference resistance, even in the presence of other biological substances and organic and inorganic metal ions.

摘要

采用简单的静电纺丝辅助水热法制备了独特的 NiCoS-碳纳米纤维 (CNF) 复合纳米结构,并将其用于痕量水平实际样品中葡萄糖的快速准确电化学氧化。未经修饰和修饰的电极的电化学阻抗谱和循环伏安法表明,由于高度导电的 NiCoS 锚定在 CNF 的大表面积上,因此在低电位下使用 NiCoS-CNF 时,具有低电荷转移电阻和出色的葡萄糖电催化传感性能。所制备的传感器的安培分析表明,在 0.54 V(相对于 Hg/HgO)的工作电位下,葡萄糖具有极低的检测限(0.25 nM)和较大的线性范围(5-70 nM)。使用 NiCoS-CNF 对人唾液、血浆和果汁样品进行葡萄糖测定的实用性进行了测试。NiCoS-CNF/GCE 对人唾液(99.1-100.8%)、血浆(98.6-101.5%)和果汁(95.1-105.7%)样品的回收率值可接受。该传感器还表现出在这些样品中葡萄糖氧化的出色电分析特性,包括可重复使用性、重复性和抗干扰性,即使存在其他生物物质和有机和无机金属离子也是如此。

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