Aqueous two-phase system based on hexafluoroisopropanol and acetonitrile for homogeneous liquid-liquid microextraction of cationic dyes

IF 0.5 4区 化学 Q4 CHEMISTRY, MULTIDISCIPLINARY
Vytautas Kavaliauskas, A. Padarauskas
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Abstract

This work demonstrates that an aqueous two-phase system (ATPS) is formed when a small amount of acetonitrile (ACN) is added to the aqueous hexafluoroisopropanol (HFIP) solution. The effect of ACN amount on the volume of the formed HFIP/ACN phase was investigated. It was also shown that relatively hydrophilic methylene blue was completely extracted into the HFIP/ACN phase whereas its extractability with conventional solvents (hexane, CH2Cl2 and CHCl3) was significantly lower. The obtained results suggest that the HFIP/ACN phase exhibits a relatively high polarity and should be a good choice for the extraction of moderately or even highly polar compounds from aqueous samples. Finally, the developed ATPS was applied for the homogeneous liquidliquid microextraction of four cationic dyes from river water samples prior to HPLC analysis. Under optimised extraction conditions, the enrichment factors were around 150. Calibration curves were linear (R2 ≥ 0.9959) for the concentration level between 0.2–0.5 and 50.0 μg/L and the detection limits were in the range 0.05–0.18 μg/L. The recoveries of the dyes for the spiked water samples were 88.6–98.5%, with the relative standard deviation values less than 9.6%.
基于六氟异丙醇和乙腈的水基两相系统用于阳离子染料的均相液-液微萃取
这项研究表明,当向六氟异丙醇(HFIP)水溶液中加入少量乙腈(ACN)时,就会形成水性两相体系(ATPS)。研究了 ACN 的用量对所形成的 HFIP/ACN 相体积的影响。结果还表明,亲水性相对较强的亚甲基蓝完全被萃取到了 HFIP/ACN 相中,而用传统溶剂(正己烷、CH2Cl2 和 CHCl3)萃取时,亚甲基蓝的萃取率则明显较低。结果表明,HFIP/ACN 相具有相对较高的极性,是从水性样品中萃取中等极性甚至高极性化合物的理想选择。最后,在进行 HPLC 分析之前,将所开发的 ATPS 用于河水样品中四种阳离子染料的均相液液微萃取。在优化的萃取条件下,富集因子约为 150。在 0.2-0.5 至 50.0 μg/L 的浓度范围内,校准曲线呈线性关系(R2 ≥ 0.9959),检出限为 0.05-0.18 μg/L。加标水样的染料回收率为 88.6%-98.5%,相对标准偏差小于 9.6%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemija
Chemija 化学-化学综合
CiteScore
1.30
自引率
16.70%
发文量
14
审稿时长
>12 weeks
期刊介绍: Chemija publishes original research articles and reviews from all branches of modern chemistry, including physical, inorganic, analytical, organic, polymer chemistry, electrochemistry, and multidisciplinary approaches.
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