Department of Analytical Chemistry. Institute of Fine Chemistry and Nanochemistry. Universidad de Córdoba, Campus de Rabanales, Edificio Marie Curie (anexo), E-14071, Córdoba, Spain.
Department of Analytical Chemistry. Institute of Fine Chemistry and Nanochemistry. Universidad de Córdoba, Campus de Rabanales, Edificio Marie Curie (anexo), E-14071, Córdoba, Spain.
Talanta. 2022 Mar 1;239:123108. doi: 10.1016/j.talanta.2021.123108. Epub 2021 Nov 27.
Supramolecular solvents (SUPRASs) are gaining momentum in the multi-residue analysis of liquid samples thanks to the delimited hydrophilic and hydrophobic microenvironments in their nanostructures. In this work, SUPRASs with increased hydrophilicity were synthesized with the aim of enhancing the extractability of polar compounds. For this purpose, a double-headed amphiphile, 1,2-decanediol, was self-assembled in hydro-organic media in the presence and absence of sodium chloride. The SUPRASs formed, characterized by scanning electron microscopy, consisted of sponge droplets made up of a highly convoluted three-dimensional (3D) network of amphiphile. The network contained interconnected bilayers that were intersected by similarly interconnected aqueous channels with high and nearly constant water content (∼30%, w/w). Both the inherently open structure of the sponge morphology and the increased hydrophilic-hydrophobic balance of the amphiphile, provided highly hydrophilic microenvironments into the aggregates that rendered in increased recovery factors for 15 perfluorinated compounds (PFCs, C-C, log P values from 0.4 to 11.6) in natural waters. Extraction took 15 min without further clean-up or evaporation of extracts which were readily compatible with LC-MS/MS quantitation. Absolute recoveries for PFCs, at the level of a few ng L, were in the range 70-120%, except for perfluoropentanoic acid (40%) and perfluorobutane sulfonic acid (51%). Detection limits for PFCs in water were in the range 0.01-0.02 ng L, which allowed their determination in slightly polluted waters (0.07-2.33 ng L). This work proves that hydrophilicity in SUPRASs can be tailored through the amphiphile and the morphology of their aggregates, and that this characteristic improves compound extractability in multi-residue analysis.
超分子溶剂(Supramolecular Solvents,简称 SUPRASs)由于其纳米结构中有限的亲水和疏水微环境,在液体样品的多残留分析中得到了越来越多的应用。在这项工作中,我们合成了具有更高亲水性的 SUPRASs,旨在提高极性化合物的萃取效率。为此,我们使用了一种双头两亲分子,即 1,2-癸二醇,在水-有机介质中自组装,同时存在和不存在氯化钠。通过扫描电子显微镜对所形成的 SUPRASs 进行了表征,结果表明它们由海绵状液滴组成,这些液滴由高度卷曲的三维(3D)两亲分子网络构成。该网络包含相互连接的双层,这些双层被同样相互连接的含水通道交叉,其中含水量高且几乎恒定(约 30%,w/w)。海绵形态的固有开放结构以及两亲分子亲水性-疏水性平衡的增加,为聚集物提供了高度亲水的微环境,从而提高了天然水中 15 种全氟化合物(PFCs,C-C,log P 值从 0.4 到 11.6)的回收率因子。萃取仅需 15 分钟,无需进一步净化或蒸发提取物,这些提取物与 LC-MS/MS 定量分析非常兼容。在几个 ng L 的水平下,PFCs 的绝对回收率在 70%-120%之间,除了全氟戊酸(40%)和全氟丁烷磺酸(51%)。水中 PFCs 的检测限在 0.01-0.02 ng L 之间,允许在轻度污染的水中(0.07-2.33 ng L)进行测定。这项工作证明了 SUPRASs 的亲水性可以通过两亲分子及其聚集物的形态进行调整,并且这种特性可以提高多残留分析中化合物的萃取效率。