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Fast Fourier transformation electrochemical impedance spectroscopy for the investigation of inactivation of glucose biosensor based on graphite electrode modified by Prussian blue, polypyrrole and glucose oxidase

机译:基于普鲁士蓝,聚吡咯和葡萄糖氧化酶改性石墨电极的石墨电极葡萄糖生物传感器失活研究的快速傅里叶变换电化学阻抗光谱

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In this study we report the application of fast Fourier transformation electrochemical impedance spectroscopy (FFT-EIS) for the evaluation of bioselective layer of amperometric glucose biosensor created by the entrapment of the enzyme glucose oxidase (GOx) within composite polypyrrole (Ppy) and Prussian blue (PB) based layer. Additionally, chronoamperometry and atomic force microscopy (AFM) were applied for the characterization of graphite electrodes (GE) modified with bioselective layer of PB/Ppy/GOx. AFM investigations reveal that the variation of pyrrole concentration in the range of 10-30 mM did not show significant differences in the surface roughness because calculated root mean square (RMS) was in the range of 15-19 nm. In another set of experiments, which were based on FFT-EIS, only a small variation in charge transfer resistance was observed before and after application of GE/PB/Ppy/GOx electrodes for amperometric determination of glucose concentration. These findings preliminary suggest that those electrochemical properties of GE/PB/Ppy/GOx electrode, which could be detected by FFT-EIS method, do not vary significantly during the use of this electrode in the detection of glucose. However, the amperometric signals of the GE/PB/Ppy/GOx electrodes decrease during the measurements due to the mixed-type of GOx inhibition, as it was determined by the evaluation of cathodic currents vs glucose concentrations. These evaluations of amperometric response kinetics let us suggest that the decrease of biosensor signal is based on mixed-type ( uncompetitive and non-competitive) inhibition of GOx.
机译:在这项研究中,我们报告了快速傅里叶变换电化学阻抗光谱(FFT-EIS)在复合聚吡咯(PPY)和普鲁士蓝(PPY)和普鲁士蓝中捕获酶葡萄糖氧化酶(GOX)产生的浓郁葡萄糖生物传感器的生物选择层的评估。 (PB)基层。另外,施加计量率和原子力显微镜(AFM)用于用PB / PPY / GOX的生物选择层改性的石墨电极(GE)的表征。 AFM研究表明,10-30mm的吡咯浓度的变化在表面粗糙度下没有显示出显着的差异,因为计算的根均线(RMS)在15-19nm的范围内。在基于FFT-EIS的另一组实验中,在施加GE / Pb / PPY / GOX电极之前和之后仅观察到电荷转移阻力的小变化,以便测定葡萄糖浓度的测定。这些发现初步表明,可以通过FFT-EIS方法检测的Ge / Pb / ppy / gox电极的那些电化学性质在使用该电极在葡萄糖的检测中使用该电极在使用该电极期间不会显着变化。然而,由于GOX抑制的混合类型,GE / PB / PPY / GOX电极的电流计量信号在测量期间减小,因为通过评估阴极电流与葡萄糖浓度的评估确定。这些抑制响应动力学的这些评估让我们建议生物传感器信号的降低是基于Gox的混合型(非竞争性和非竞争性)抑制。

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