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首页> 外文期刊>Materials science & engineering >One-step solvothermal synthesis of nanoflake-nanorod WS_2 hybrid for non-enzymatic detection of uric acid and quercetin in blood serum
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One-step solvothermal synthesis of nanoflake-nanorod WS_2 hybrid for non-enzymatic detection of uric acid and quercetin in blood serum

机译:一步法溶剂热合成纳米片-纳米螯合物WS_2杂化物用于非酶法检测血清中的尿酸和槲皮素

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Herein, we report a novel, one-step solvothermal assisted thermal decomposition synthesis of nanoflake-nanorod tungsten disulphide (WS2) nanomaterial and its application for non-enzymatic electrochemical sensing of uric acid (UA) and quercetin. The as-synthesised WS2 was characterized using X-ray diffraction (XRD), Raman spectrometer, Fourier transform infrared spectroscopy (FTIR) and scanning electron microscope (SEM). SEM analysis revealed the growth of 2D-1D nanoflake-nanorod hybrid nanostructure of 2H phase WS2 with greater defects and metal edges. Under optimized conditions, the WS2 modified glassy carbon electrode (WS2/GCE) facilitated the effective sensing of UA and quercetin which was measured using differential pulse voltammetry (DPV) technique. The sensor exhibited a low limit of detection (LoD) of 1.2 mu M, the sensitivity of 312 nA/mu M.cm(2) for the dynamic range from 5 mu M to 1 mM towards UA while an even lower of 2.4 nM and sensitivity of 258 nAM cm(2) in the dynamic range of 10 nM-50 mu M for quercetin. The enhanced sensing ability of the sensor attributed towards the synergetic effect of 2D-1D hybrid structure of WS2, wherein the 2D nanoflakes enhance the electrocatalytic property of WS2 with shorter diffusion length and 1D nanorods offer large surface area which provides greater number of active sites for sensing. Further, the sensor showed a remarkable selectivity towards UA and quercetin in the presence of ascorbic acid (AA), dopamine (DA), sodium (Na+), chloride (Cl-), calcium (Ca2+) and glucose. The sensor was further employed in successful detection of UA and quercetin in the simulated blood serum sample with excellent recovery percentages. The proposed synthesis route can be used to develop WS2 based electrochemical sensing platforms useful for various bioanalytical applications.
机译:本文中,我们报道了一种新颖的一步法溶剂热辅助热分解法合成纳米片-纳米级二硫化钨(WS2)纳米材料及其在尿酸(UA)和槲皮素的非酶电化学检测中的应用。使用X射线衍射(XRD),拉曼光谱仪,傅立叶变换红外光谱(FTIR)和扫描电子显微镜(SEM)对合成后的WS2进行表征。 SEM分析显示2H相WS2的2D-1D纳米片-纳米颗粒杂化纳米结构的生长,具有更大的缺陷和金属边缘。在优化条件下,WS2修饰玻碳电极(WS2 / GCE)促进了UA和槲皮素的有效感测,这是使用差分脉冲伏安法(DPV)技术进行测量的。该传感器的检测下限(LoD)为1.2μM,对UA的动态范围从5μM到1 mM,灵敏度为312 nA /μM.cm(2),而更低的灵敏度为2.4 nM / cm。槲皮素在10 nM-50μM的动态范围内的灵敏度为258 nA / nM cm(2)。传感器增强的感测能力归因于WS2的2D-1D杂化结构的协同效应,其中2D纳米薄片以较短的扩散长度增强了WS2的电催化性能,而1D纳米棒提供了较大的表面积,从而提供了更多的活性位点。感应。此外,在抗坏血酸(AA),多巴胺(DA),钠(Na +),氯化物(Cl-),钙(Ca2 +)和葡萄糖存在下,传感器对UA和槲皮素具有显着的选择性。该传感器还用于成功检测模拟血清样品中的UA和槲皮素,回收率极高。拟议的合成路线可用于开发基于WS2的电化学传感平台,可用于各种生物分析应用。

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