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首页> 外文期刊>International Journal of Electrochemical Science >Co-precipitation synthesis and characterization of rare-earth pyrochlore Gadolinium stannate; A novel electrocatalyst for the determination of furazolidone in water samples
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Co-precipitation synthesis and characterization of rare-earth pyrochlore Gadolinium stannate; A novel electrocatalyst for the determination of furazolidone in water samples

机译:共析出合成与稀土烧岭钆锭剂的表征; 一种新型电催化剂,用于测定水样中呋喃唑酮

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摘要

Researchers are now increasingly concerned with the development of a resourceful and eminent catalyst for the trace level analysis and detoxification of toxic contaminants in the ecosystem. On keeping this in mind, we have efficiently prepared a novel pyrochlore phase gadolinium stannate (Gd2Sn2O7; GDS) nanoparticles by a simple co-precipitation process and the electrochemical activity of prepared GDS nanoparticles against furazolidone (FUD) was proclaimed. The synthesized GDS nanoparticles were characterized by utilizing powder X-ray diffraction (PXRD), Raman spectroscopy, and X-ray photoelectron spectroscopy (XPS) analysis. The morphology of as-synthesized GDS nanoparticles was studied by field-emission scanning electron microscopy (FE-SEM) combined with energy-dispersive Xray spectroscopy (EDX) and high-resolution transmission electron microscopy (HR-TEM). The GDS nanoparticles have been coated on the surface of a screen-printed carbon electrode and the GDS modified SPCE electrode (GDS/SPCE) has been hooked as a functional (working) electrode for the electrocatalytic sensor studies towards FUD. To analyze the electrocatalytic activity of GDS nanoparticles for the detection of FUD, electroanalytical techniques such as cyclic voltammetry (CV) and differential pulse voltammetry (DPV) have been practiced. The fabricated GDS/SPCE sensor established remarkable selectivity and sensitivity for the detection of FUD, which might be due to the great affinity of the cubic pyrochlore property of GDS nanoparticles. The fabricated sensor exposed two linear ranges from 0.01-153.21 μM and 193.21-1033.21 μM along with LOD (lower detection limit) of 23 nm and has an excellent sensitivity of 0.66 μA μM-1 cm-2 . The fashioned GDS modified SPCE sensor revealed outstanding repeatability, stability, and reproducibility for the detection of FUD. On affording the above-acquired findings, we hopefully tested our designed sensor for the real-time sensing analysis in water samples and obtained acceptable recovery results.
机译:研究人员现在越来越关注,在生态系统中的痕量水平分析和毒性污染物的痕量分析和解毒的发展,越来越关注。在继续考虑到这一点,我们通过简单的共沉淀方法(GD2SN2O7; GDS)纳米粒子有效地制备了一种新的烧焦相钆静脉(GDSN2O7; GDS)纳米颗粒,并且令代价的GDS纳米粒子(FUD)的电化学活性进行了探测。通过利用粉末X射线衍射(PXRD),拉曼光谱和X射线光电子能谱(XPS)分析来表征合成的GDS纳米颗粒。通过现场 - 发射扫描电子显微镜(Fe-SEM)与能量分散X射线光谱(EDX)和高分辨率透射电子显微镜(HR-TEM)组合的作为合成的GDS纳米粒子的形态。 GDS纳米颗粒已涂覆在丝网印刷的碳电极的表面上,并且GDS改性的SPCE电极(GDS / SPCE)已被钩住为用于FUD的电催化传感器研究的官能(工作)电极。为了分析GDS纳米颗粒的电催化活性,用于检测FUD的检测,已经实施了循环伏安法(CV)和差分脉冲伏安法(DPV)的电解化技术。制造的GDS / SPCE传感器为检测FUD建立了显着的选择性和灵敏度,这可能是由于GDS纳米颗粒的立方烧火性质的巨大亲和力。制造的传感器暴露于0.01-153.21μm和193.21-1033.21μm的两个线性范围以及23nm的LOD(较低检测限),具有0.66μAμm-1cm-2的优异敏感性。塑造的GDS改装SPCE传感器显示出突出的可重复性,稳定性和重复性,用于检测FUD。在提供上述发现的发现之中,我们希望为水样中的实时感测分析进行设计,并获得了可接受的恢复结果。

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