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首页> 外文期刊>Analytica chimica acta >Facile preparation of glutathione-stabilized gold nanoclusters for selective determination of chromium (III) and chromium (VI) in environmental water samples
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Facile preparation of glutathione-stabilized gold nanoclusters for selective determination of chromium (III) and chromium (VI) in environmental water samples

机译:谷胱甘肽稳定的金纳米簇的简便制备,用于选择性测定环境水样品中的铬(III)和铬(VI)

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摘要

A novel method for selective determination of Cr(III) and Cr(VI) in environmental water samples was developed based on target-induced fluorescence quenching of glutathione-stabilized gold nanoclusters (GSH-Au NCs). Fluorescent GSH-Au NCs were synthesized by a one-step approach employing GSH as reducing/protecting reagent. It was found that Cr(III) and Cr(Vl) showed pH-dependent fluorescence quenching capabilities for GSH-Au NCs, and thus selective determination of Cr(III) and Cr(VI) could be achieved at different pHs. Addition of EDTA was able to effectively eliminate the interferences from other metal ions, leading to a good selectivity for this method. Under optimized conditions, Cr(III) showed a linear range of 25-3800 μg L~(-1) and a limit of detection (LOD) of 2.5 μg L~(-1). The Cr(VI) ion demonstrated a linear range of 5-500 μg L~(-1) and LOD of 0.5 μg L~(-1). The run-to-run relative standard deviations (n = 5) for Cr(III) and Cr(VI) were 3.9% and 2.8%, respectively. The recoveries of Cr(III) and Cr(VI) in environmental water samples were also satisfactory (76.3-116%). This method, with its simplicity, low cost, high selectivity and sensitivity, could be used as a promising tool for chromium analysis in environmental water samples.
机译:基于目标诱导的谷胱甘肽稳定的金纳米团簇(GSH-Au NCs)的荧光猝灭,开发了一种选择性测定环境水样品中Cr(III)和Cr(VI)的新方法。荧光GSH-Au NCs是通过一步法合成的,以GSH作为还原/保护剂。发现Cr(III)和Cr(Vl)对GSH-Au NCs具有pH依赖性的荧光猝灭能力,因此可以在不同pH下选择性测定Cr(III)和Cr(VI)。 EDTA的加入能够有效消除其他金属离子的干扰,从而使该方法具有良好的选择性。在最佳条件下,Cr(III)的线性范围为25-3800μgL〜(-1),检出限(LOD)为2.5μgL〜(-1)。 Cr(VI)离子的线性范围为5-500μgL〜(-1),LOD为0.5μgL〜(-1)。 Cr(III)和Cr(VI)的运行相对标准偏差(n = 5)分别为3.9%和2.8%。环境水样品中的Cr(III)和Cr(VI)的回收率也令人满意(76.3-116%)。该方法简单,成本低,选择性高,灵敏度高,可用于环境水样中铬的分析。

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