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首页> 外文期刊>Analytica chimica acta >Rapid separation of isomeric perfluoroalkyl substances by high-resolution differential ion mobility mass spectrometry
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Rapid separation of isomeric perfluoroalkyl substances by high-resolution differential ion mobility mass spectrometry

机译:高分辨率差分离子迁移率质谱法快速分离异构全氟烷基物质

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摘要

The analysis of persistent organic pollutants, such as perfluoroalkyl substances (PFAS) including perfluorooctanoic acid (C2F15COOH, PFOA) and perfluorooctane sulfonate (C8F17SO3-, PFOS) by hyphenated chromatography-mass spectrometry methods is crucial in ensuring water quality. One of the challenges in PFOA and PFOS analysis is the separation of linear and branched isomers that have the same mass-to-charge ratio but can have different toxicological properties. Current methods that are used for separating isomeric PFAS require relatively long analysis times (min to h) that can limit throughput. An emerging technique for the direct analysis of isomeric compounds is differential mobility spectrometry (DMS), which can rapidly separate gas phase ions prior to detection by mass spectrometry (MS). However, an ion mobility-based method for the analysis of PFAS has not been reported in the literature. Herein, high-resolution DMS-MS is used to separate and detect isomeric PFAS compounds for the first time in a separation process that occurs in milliseconds. The resolution of isomeric peaks increased by over 200% and 500% for PFOA and PFOS isomers, respectively, using a DMS carrier gas composed of 50:50% He:N-2 by volume compared to 100% N-2, which was crucial in the separation of PFAS isomers under these conditions. Linear, secondary-branched, and tertiary-branched isomers of PFOA and PFOS including those that differ by the position of a single perfluoromethyl group can be resolved by DMS-MS. The DMS compensation field required to transmit different isomers increases as the extent of branching increases. For isomeric PFASs with a single branching point, the compensation field for optimal transmission also increases as the perfluoromethyl group is positioned closer to the carboxylate and sulfonate groups under these conditions. These results indicate that high-resolution DMS-MS should be a useful approach for the rapid analysis of isomeric PFAS. (C) 2019 Elsevier B.V. All rights reserved.
机译:通过连丝色谱 - 质谱法(C2F15COOH,PFOA)和全氟辛酸(C2F15COOH,PFO)和全氟辛烷磺酸盐(C8F17SO3-,PFOS)的全氟烷基物质(PFA)的分析是至关重要的,在确保水质方面至关重要。 PFOA和PFOS分析中的挑战之一是具有相同的质量与电荷比的线性和支链异构体的分离,但可以具有不同的毒理学性质。用于分离异构PFA的当前方法需要相对长的分析时间(min到h),可以限制吞吐量。用于直接分析异构化合物的新出现技术是差分迁移率光谱法(DMS),其在通过质谱(MS)检测之前可以快速分离气相离子。然而,在文献中尚未报告基于离子迁移率的PFA分析方法。在此,高分辨率DMS-MS用于在毫秒的分离过程中首次分离和检测异构PFAS化合物。 PFOA和PFOS异构体分别使用由50:50%的DMS载体气体分别增加20%和500%,并与100%N-2组成的DMS载体气体相比,PFOA载体气体增加了200%和500%。在这些条件下分离PFAS异构体。可以通过DMS-MS分解PFOA和PFO的线性,二次支链和叔支链的异构体,包括通过单个全氟甲基的位置不同的那些。随着分支增加的程度增加,传输不同异构体所需的DMS补偿场增加。对于具有单个分支点的异构PFASS,随着全氟甲基在这些条件下定位在羧酸甲酯和磺酸盐基团上,可以增加用于最佳传播的补偿场。这些结果表明,高分辨率DMS-MS应该是快速分析异构PFA的有用方法。 (c)2019年Elsevier B.V.保留所有权利。

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