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3D Graphene-Nitrogen Doped Carbon Nanotubes Network Modified Electrode as Sensing Materials for the Determination of Urapidil

机译:3D石墨烯-氮掺杂碳纳米管网络修饰电极作为测定乌拉地尔的传感材料

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In this work, a three dimensional (3D) graphene-nitrogen doped carbon nanotubes (G-NCNTs) network was successfully fabricated on the surface of a glassy carbon (GC) electrode using the pulse potential method (PPM) in a graphene oxide-nitrogen doped carbon nanotubes (GO-NCNTs) dispersion. The morphological and characteristics of GO-NCNTs and G-NCNTs nanocomposites were investigated by atomic force microscopy (AFM), scanning electron microscopy (SEM), UV-vis spectroscopy, Raman spectroscopy, and electrochemical experiments. The 3DG-NCNTs network was applied as a new voltammetric material for the fabrication of an electrochemical platform for determination of urapidil. Systematic electrochemical tests demonstrate that the 3DG-NCNTs network modified GC electrode can effectively increase the response to the oxidation of urapidil. Under the optimum conditions, the electrochemical response was linear with urapidil concentrations in the range of 1.0 × 10 ?8 ~2.0 × 10 ?6 mol·L ?1 , while a low detection limit of 5.0 × 10 ?9 mol·L ?1 was obtained for urapidil. Moreover, the proposed sensing platform exhibited good results for sensitivity, reproducibility, selectivity, and stability, which makes it very suitable for use as an ideal inexpensive and rapid analytical method applicable for complex drug matrices.
机译:在这项工作中,使用脉冲电势方法(PPM)在氧化石墨烯-氮中成功地在玻璃碳(GC)电极的表面上成功构建了三维(3D)掺杂石墨烯-氮的碳纳米管(G-NCNT)网络。掺杂碳纳米管(GO-NCNT)分散体。通过原子力显微镜(AFM),扫描电子显微镜(SEM),紫外可见光谱,拉曼光谱和电化学实验研究了GO-NCNTs和G-NCNTs纳米复合材料的形貌和特征。 3DG-NCNTs网络被用作一种新型伏安材料,用于制造用于测定乌拉地尔的电化学平台。系统的电化学测试表明,3DG-NCNTs网络修饰的GC电极可以有效提高对乌拉地尔氧化的响应。在最佳条件下,乌拉地尔的浓度在1.0×10?8〜2.0×10?6mol·L?1的范围内,电化学响应呈线性关系,而检出限低至5.0×10?9mol·L?1。获得了乌拉地尔。此外,所提出的感测平台在灵敏度,重现性,选择性和稳定性方面显示出良好的结果,使其非常适合用作适用于复杂药物基质的理想的廉价且快速的分析方法。

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