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In situ solvent formation microextraction in the presence of ionic liquid for preconcentration and speciation of arsenic in saline samples and total arsenic in biological samples by electrothermal atomic absorption spectrometry

机译:在原位溶剂形成微萃取在存在离子液体中,用于盐水样品中砷的预浓缩和物种,通过电热原子吸收光谱法在生物样品中的总砷

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摘要

In this modality, the extraction phase is formed in situ while simultaneously extracting analytes. First, a water-miscible ionic liquid (IL) ([Hmim][BF4]), capable of complete dissolving in the aqueous solution, was added to the sample. Then, an ion-exchange reagent (NaPF 6) was added to obtain the hydrophobic IL ([Hmim][PF6]) that acted as the analyte extractant to form the cloudy homogeneous solution for the preconcentration and speciation of trace amounts of As (III) and As (V) with electrothermal atomic absorption spectrometry (ETAAS) detection. In situ solvent formation microextraction is a simple and rapid method for extraction and preconcentration of metal ions from sample solutions containing high concentration of salt. Some effective factors that influence the microextraction efficiency were investigated and optimized. Under the optimum experimental conditions, the limit of detection (3 σ) and the enrichment factor were 6 ng L-1 and 198, respectively. The obtained relative standard deviation was 4.78%. The proposed method was successfully applied for the determination of As (III) and As (V) in water samples, food salts, and total As in biological samples.
机译:在这种方式中,提取阶段以原位形成,同时提取分析物。首先,将能够完全溶解在水溶液中的水混溶离子液体(IL)([Hmim] [BF4])加入到样品中。然后,加入离子交换试剂(NaPF 6)以获得用作分析物萃取剂的疏水性IL([Hmim] [PF6]),以形成浑浊的均匀溶液,用于痕量的痕量为(III) )和作为(v)具有电热原子吸收光谱法(Etaas)检测。原位溶剂形成微萃取是一种简单且快速地用于从含有高浓度盐的样品溶液中提取和预浓缩金属离子的浓缩。研究了影响微萃取效率的一些有效因素并进行了优化。在最佳实验条件下,检测极限(3σ)和富集因子分别为6 ng L-1和198。获得的相对标准偏差为4.78%。所提出的方法成功地应用于水样,食品盐和总量的(III)和AS(v),如在生物样品中。

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