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Electrochemical Determination of Food Preservative Nitrite with Gold Nanoparticles/p-Aminothiophenol-Modified Gold Electrode

机译:纳米金/对氨基苯硫酚修饰的金电极电化学测定食品防腐剂亚硝酸盐

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摘要

Due to the negative impact of nitrate and nitrite on human health, their presence exceeding acceptable levels is not desired in foodstuffs. Thus, nitrite determination at low concentrations is a major challenge in electroanalytical chemistry, which can be achieved by fast, cheap, and safe electrochemical sensors. In this work, the working electrode (Au) was functionalized with p-aminothiophenol (p-ATP) and modified with gold nanoparticles (Au-NPs) to manufacture the final (Au/p-ATP-Aunano) electrode in a two-step procedure. In the first step, p-ATP was electropolymerized on the electrode surface to obtain a polyaminothiophenol (PATP) coating. In the second step, Au/p-ATP-Aunano working electrode was prepared by coating the surface with the use of HAuCl4 solution and cyclic voltammetry. Determination of aqueous nitrite samples was performed with the proposed electrode (Au/p-ATP-Aunano) using square wave voltammetry (SWV) in pH 4 buffer medium. Characteristic peak potential of nitrite samples was 0.76 V, and linear calibration curves of current intensity versus concentration was linear in the range of 0.5–50 mg·L−1 nitrite with a limit of detection (LOD) of 0.12 mg·L−1. Alternatively, nitrite in sausage samples could be colorimetrically determined with high sensitivity by means of p-ATP‒modified gold nanoparticles (AuNPs) and naphthylethylene diamine as coupling agents for azo-dye formation due to enhanced charge-transfer interactions with the AuNPs surface. The slopes of the calibration lines in pure NO2 solution and in sausage sample solution, to which different concentrations of NO2 standards were added, were not significantly different from each other, confirming the robustness and interference tolerance of the method. The proposed voltammetric sensing method was validated against the colorimetric nanosensing method in sausage samples.
机译:由于硝酸盐和亚硝酸盐对人体健康的负面影响,食品中不希望它们的含量超过可接受的水平。因此,低浓度亚硝酸盐的测定是电分析化学的主要挑战,这可以通过快速,廉价和安全的电化学传感器来实现。在这项工作中,工作电极(Au)用对氨基硫酚(p-ATP)进行了功能化,并用金纳米颗粒(Au-NPs)进行了修饰,从而分两步制造了最终的(Au / p-ATP-Aunano)电极程序。在第一步中,将p-ATP电聚合在电极表面上以获得聚氨基硫酚(PATP)涂层。在第二步中,通过使用HAuCl4溶液和循环伏安法在表面上涂覆来制备Au / p-ATP-Aunano工作电极。使用建议的电极(Au / p-ATP-Aunano)在pH 4缓冲液中使用方波伏安法(SWV)进行亚硝酸盐水溶液的测定。亚硝酸盐样品的特征峰电位为0.76 V,电流强度与浓度的线性校准曲线在0.5–50 mg·L -1 亚硝酸盐范围内呈线性,检出限(LOD)为0.12 mg·L -1 。另外,通过对ATP-修饰的金纳米颗粒(AuNPs)和萘乙二胺作为偶氮染料形成的偶联剂,由于与AuNPs表面电荷转移的相互作用增强,因此可以比色法高灵敏度地测定香肠样品中的亚硝酸盐。在添加了不同浓度的NO2 -标准液的纯NO2 -溶液和香肠样品溶液中,校准线的斜率没有明显差异,确认该方法的鲁棒性和抗干扰性。相对于比色纳米感测方法在香肠样品中验证了所提出的伏安感测方法。

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