School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, 211189, China.
Biomed Microdevices. 2020 Feb 15;22(1):17. doi: 10.1007/s10544-020-0472-z.
In this study, cobalt oxides functionalized MoS/reduced graphene oxide was synthesized via a facile one-pot hydrothermal approach. Morphology and crystal structure of this ternary nanoarchitecture were characterized through scanning electron microscopy, transmission electron microscopy, Raman spectra and X-ray photoelectron spectroscopy. An ultrasensitive non-enzymatic glucose sensor was developed by decorating this ternary nanohybrid on the working electrode of a screen-printed electrochemical sensor. Cycle sweep voltammetry and amperometry were used to study the electro-catalytic activity of the modified working electrode, which demonstrated superior catalytic activity towards glucose oxidation with an extremely low detection limit of 30 nM. Meanwhile, this sensor showed an excellent selectivity in the presence of interfering species such as uric acid, ascorbic acid, etc. Based on the screen-printed technique, enzyme mimic nanomaterials could be easily introduced into portable devices, which opens the way to take non-enzymatic glucose electrochemical sensing towards point-of-care.
在这项研究中,通过简便的一锅水热法合成了钴氧化物功能化 MoS/还原氧化石墨烯。通过扫描电子显微镜、透射电子显微镜、拉曼光谱和 X 射线光电子能谱对这种三元纳米结构的形貌和晶体结构进行了表征。通过在丝网印刷电化学传感器的工作电极上修饰这种三元纳米杂化物,开发了一种超灵敏的非酶葡萄糖传感器。循环伏安法和安培法用于研究修饰工作电极的电催化活性,该电极对葡萄糖氧化具有优异的催化活性,检测限低至 30 nM。同时,该传感器在存在尿酸、抗坏血酸等干扰物质时表现出优异的选择性。基于丝网印刷技术,可以将酶模拟纳米材料轻松引入到便携式设备中,这为即时医疗的非酶葡萄糖电化学传感开辟了道路。