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Role of Au(NPs) in the enhanced response of Au(NPs)-decorated MWCNT electrochemical biosensor

机译:Au(NPs)在修饰Au(NPs)修饰的MWCNT电化学生物传感器的增强响应中的作用

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Background: The combination of Au-metallic-NPs and CNTs are a new class of hybrid nanomaterials for the development of electrochemical biosensor. Concentration of Au(nanoparticles [NPs]) in the electrochemical biosensor is crucial for the efficient charge transfer between the Au-NPs-MWCNTs modified electrode and electrolytic solution. Methods: In this work, the charge transfer kinetics in the glassy carbon electrode (GCE) modified with Au(NPs)–multiwalled carbon nanotube (MWCNT) nanohybrid with varied concentrations of Au(NPs) in the range 40–100 nM was studied using electrochemical impedance spectroscopy (EIS). Field emission scanning electron microscopy and transmission electron microscopy confirmed the attachment of Au(NPs) on the surface of MWCNTs. Results: The cyclic voltammetry and EIS results showed that the charge transfer mechanism was diffusion controlled and the rate of charge transfer was dependent on the concentration of Au(NPs) in the nanohybrid. The formation of spherical diffusion zone, which was dependent on the concentration of Au(NPs) in nanohybrids, was attributed to result in 3 times the increase in the charge transfer rate k s, 5 times increase in mass transfer, and 5% (9%) increase in Ipa (Ipc) observed in cyclic voltammetry in 80 nM Au(NP) nanohybrid-modified GCE from MWCNT-modified GCE. The work was extended to probe the effect of charge transfer rates at various concentrations of Au(NPs) in the nanohybrid-modified electrodes in the presence of Escherichia coli. The cyclic voltammetry results clearly showed the best results for 80 nM Au(NPs) in nanohybrid electrode. Conclusion: The present study suggested that the formation of spherical diffusion zone in nanohybrid-modified electrodes is critical for the enhanced electrochemical biosensing applications.
机译:背景:Au-金属-NPs和CNTs的结合是一类新型的混合纳米材料,用于电化学生物传感器的发展。电化学生物传感器中Au(纳米颗粒[NPs])的浓度对于Au-NPs-MWCNTs修饰电极与电解液之间的有效电荷转移至关重要。方法:在这项工作中,研究了使用Au(NPs)-多壁碳纳米管(MWCNT)纳米杂化剂修饰的玻碳电极(GCE)的电荷转移动力学,其中Au(NPs)的浓度范围为40-100 nM。电化学阻抗谱(EIS)。场发射扫描电子显微镜和透射电子显微镜证实了Au(NPs)在MWCNTs表面的附着。结果:循环伏安法和EIS结果表明,电荷转移机制受扩散控制,电荷转移速率取决于纳米混合物中Au(NPs)的浓度。球形扩散区的形成取决于纳米杂化物中Au(NPs)的浓度,其原因是电荷转移速率k s 的增加了3倍,质量增加了5倍MWCNT修饰的80 nM Au(NP)纳米杂化修饰的GCE中循环伏安法中观察到的I pa (I pc )转移和5%(9%)的增加GCE。这项工作已扩展到在大肠杆菌的存在下探测纳米混合修饰电极中各种浓度的Au(NPs)电荷转移速率的影响。循环伏安法结果清楚地显示了在纳米混合电极中80 nM Au(NPs)的最佳结果。结论:本研究表明,纳米杂化修饰电极中球形扩散区的形成对于增强电化学生物传感应用至关重要。

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