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Glycine-assisted synthesis of NiO hollow cage-like nanostructures for sensitive non-enzymatic glucose sensing

机译:甘氨酸辅助合成NiO空心笼状纳米结构,用于敏感的非酶促葡萄糖传感

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In this work, a highly sensitive non-enzymatic glucose sensor was developed based on NiO hollow cage-like nanostructures (NiO HCs). The novel nanostructures were synthesized using hydrothermal growth route with glycine employed as an effecient growth director. The synthesized NiO HCs were characterized by using scanning electron microscopy (SEM), X-ray photoelectron microscopy (XPS) X-ray diffraction (XRD) and Fourier transform infrared (FTIR) techniques for morphological, compositional and structural determination respectively. The prepared NiO HCs were directly integrated to be structured electrodes exhibiting enhanced electrocatalytic performance toward the oxidation of glucose with high sensitivity (2476.4 mu A mM(-1) cm(-2)), low detection limit (LOD) (0.1 mu M), wide detection range (0.1-5.0 mM) (r(2) = 0.9997) and excellent reproducibility. The developed nonenzymatic glucose sensor further demonstrated excellent anti-interference property in the presence of common interferents such as uric acid (UA), dopamine (DP) and ascorbic acid (AS). The role of glycine molecules as an efficient growth directing agent with a plausible growth mechanism has also been highlighted. In addition, the NiO HCs modified electrode was also used to analyze glucose concentration in human serum samples. The excellent sensing performance can be attributed to the unique morphology, which allowed increased electron transfer passages with lower charge transfer resistance, and enhanced molecular approach during electrochemical sensing offered from nanoscale "hollow cage" units of NiO structures.
机译:在这项工作中,基于NiO空心笼状纳米结构(NiO HCs)开发了一种高灵敏度的非酶葡萄糖传感器。使用水热生长途径合成了新的纳米结构,其中甘氨酸用作有效的生长指导。分别通过扫描电子显微镜(SEM),X射线光电子显微镜(XPS),X射线衍射(XRD)和傅立叶变换红外(FTIR)技术对合成的NiO HCs进行了形态,组成和结构测定。制备的NiO HCs直接集成为结构化电极,对葡萄糖的氧化显示出增强的电催化性能,灵敏度高(2476.4μAmM(-1)cm(-2)),检测限低(LOD)(0.1μM) ,宽检测范围(0.1-5.0 mM)(r(2)= 0.9997)和出色的重现性。在常见的干扰物(如尿酸(UA),多巴胺(DP)和抗坏血酸(AS))的存在下,开发的非酶葡萄糖传感器进一步表现出出色的抗干扰性能。还强调了甘氨酸分子作为具有合理的生长机理的有效生长指导剂的作用。此外,NiO HCs修饰电极还用于分析人血清样品中的葡萄糖浓度。出色的感测性能可以归因于独特的形态,它可以增加电子传输通道,同时具有较低的电荷转移电阻,并且在电化学感测过程中增强的分子方法由NiO结构的纳米级“空心笼”单元提供。

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