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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Fabrication of reduced graphene oxide-magnetic nanocomposite (rGO-Fe3O4) as an electrochemical sensor for trace determination of As(III) in water resources
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Fabrication of reduced graphene oxide-magnetic nanocomposite (rGO-Fe3O4) as an electrochemical sensor for trace determination of As(III) in water resources

机译:将石墨烯氧化物 - 磁性纳米复合材料(RGO-Fe3O4)的制备为用于追踪水资源中的(III)的电化学传感器

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摘要

In this work, an electrochemical sensor has been developed for trace determination of As(III) in water resources using differential pulse anodic stripping voltammetry (DPASV), on the surface of screen printed electrode modified reduced graphene oxide-magnetic nanocomposite (rGO-Fe3O4/SPE). Field Emission Scanning Electron Microscopy (FESEM) and Transmission Electron Microscopy (TEM) showed a homogeneous distribution of Fe3O4 nanoparticles on GO sheets with an average size of 15.90 +/- 0.84 nm. Raman spectroscopy and Electrochemical Impedance Spectroscopy (EIS) studies demonstrate that while As(III) was reduced to As, during deposition step (-0.5 V, 300 s), GO nanosheets were electrochemically reduced to rGO to provide more sensitive and conductive substrate. Under optimized conditions, the anodic peak current was proportional to the As(III) concentration over a wide range of 2-300 mu g L-1, with a detection limit and quantitative limit of 0.10 and 0.33 mu g L-1 (S/N = 3) respectively. The proposed As(III) electrochemical sensor also exhibited a relative standard deviation of 3.2% for six replicate analysis of 50 mu g L-1 As(III). Stability test showed the sensor retained similar to 93% of its initial signal after 30 successive measurements and similar to 90% of its initial measurement after two weeks storage at room temperature. In addition, the fabricated sensor was successfully employed for determining the As(III) residue in several water samples including lake water, reverse osmosis drink water and mineral water. The results were in agreement with inductively coupled plasma mass spectrometry (ICP-MS) when compared.
机译:在这项工作中,在丝网印刷电极的表面改性的石墨烯氧化物 - 磁性纳米复合材料(RGO-Fe3O4 /)的表面上,已经开发了一种电化学传感器以用于追踪AS(III)的水资源中的(III)。(DPASV) SPE)。场发射扫描电子显微镜(FESEM)和透射电子显微镜(TEM)在去板上显示Fe3O4纳米颗粒的均匀分布,平均尺寸为15.90 +/- 0.84nm。拉曼光谱和电化学阻抗光谱(EIS)研究表明,虽然(III)降低到沉积步骤(-0.5V,300秒)期间,将纳米片电化学减少到RGO以提供更敏感和导电基板。在优化条件下,阳极峰值电流在宽范围为2-300μg1-1的AS(III)浓度,检测限和定量限制为0.10和0.33μgl-1(s / n = 3)分别。所提出的(III)电化学传感器也表现出5.2%的相对标准偏差,六个重复分析为50μg1-1作为(iii)。稳定性测试显示,在室温下储存两周后,传感器在连续测量后的93%的初始信号中保持类似于其初始信号的93%,并且在室温下储存两周后的90%。此外,成功地使用制造的传感器用于在包括湖水,反渗透饮水和矿泉水中的几种水样中确定AS(III)残留物。相比,结果与电感耦合等离子体质谱(ICP-MS)一致。

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