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Sensitive and Rapid Flow Injection Amperometric Hydrazine Sensor using an Electrodeposited Gold Nanoparticle Graphite Pencil Electrode

机译:使用电沉积的金纳米颗粒石墨铅笔电极的敏感和快速流喷液浓度肼传感器

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摘要

A gold (Au) nanoparticle-modified graphite pencil electrode was prepared by an electrodeposition procedure for the sensitive and rapid flow injection amperometric determination of hydrazine (N2H4). The electrodeposited Au nanoparticles on the pretreated graphite pencil electrode surface were characterized by scanning electron microscopy, energy-dispersive X-ray spectroscopy, X-ray diffraction spectroscopy, and electrochemical impedance spectroscopy. Cyclic voltammograms showed that the Au nanoparticle-modified pretreated graphite pencil electrode exhibits excellent electrocatalytic activity toward oxidation of hydrazine because the highly irreversibly and broadly observed oxidation peak at +600 mV at the pretreated graphite pencil electrode shifted to -167 mV at the Au nanoparticle pretreated graphite pencil electrode; in addition, a significant enhancement in the oxidation peak current was obtained. Thus, the flow-injection (FI) amperometric hydrazine sensor was constructed based on its electrocatalytic oxidation at the Au nanoparticle-modified pretreated graphite pencil electrode. The Au nanoparticle-modified pretreated graphite pencil electrode exhibits a linear calibration curve between the flow injection amperometric current and hydrazine concentration within the concentration range from 0.01 to 100 mu M with a detection limit of 0.002 mu M. The flow injection amperometric sensor has been successfully used for the determination of N2H4 in water samples with good accuracy and precision.
机译:通过用于敏感的和快速流动喷射的电沉积过程制备金(Au)纳米颗粒改性石墨铅笔电极,其肼的浓度测定肼测定。通过扫描电子显微镜,能量分散X射线光谱,X射线衍射光谱和电化学阻抗光谱,将电沉积的石墨铅笔电极表面上的电沉积的Au纳米颗粒表征。循环伏安图显示Au纳米颗粒改性的预处理石墨铅笔电极对肼的氧化具有优异的电催化活性,因为在预处理的石墨铅笔电极的高度不可逆和广泛观察到的氧化峰值在-167mV的Au纳米粒子预处理时石墨铅笔电极;另外,获得氧化峰电流的显着增强。因此,基于其Au纳米颗粒改性的预处理石墨铅笔电极的电催化氧化构建流动注射(FI)倍细肼传感器。 Au纳米颗粒改性预处理的石墨铅笔铅笔电极在流动喷射电流和肼浓度范围内的线性校准曲线,其浓度范围为0.01至100μm,检测限为0.002μmm。流喷液凹法传感器已成功用于测定具有良好精度和精度的水样中的N2H4。

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