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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Inhibition of water adsorption into polar solid-phase microextraction materials with ultrathin polydimethylsiloxane coating for thermal desorption-gas chromatography analysis
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Inhibition of water adsorption into polar solid-phase microextraction materials with ultrathin polydimethylsiloxane coating for thermal desorption-gas chromatography analysis

机译:用超薄聚二甲基硅氧烷涂层抑制水吸附到极性固相微萃取材料中,用于热解吸 - 气相色谱分析

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Solid-phase microextraction (SPME) coupled with thermal desorption-gas chromatography (TD-GC) has become a powerful analysis tool for volatile organic compounds (VOCs) and semi-volatile organic compounds (SVOCs) in water samples. However, water adsorption into polar microextraction phase is usually unavoidable during the extraction process, and the burst of large amounts of water vapour during thermal desorption will cause serious problems to GC separation and detectors. Pawliszyn's group had demonstrated that the tens of micron-thick, defect-free polydimethylsiloxane (PDMS) coating could act as a perfect barrier for water adsorption and offer much better compatibility in complex matrices. However, the PDMS overcoat largely decreased the uptake rate of polar analytes into the inner sorbent. In order to quantify the effect of PDMS coating thickness on water adsorption amount and the extraction kinetics, ultrathin PDMS layer was used to coat the polar extraction phase with polyimide (PI) as a model in this work. It was surprising to find that the PDMS coating with the thickness less than one micron can decrease the water adsorption by 96%, while the extraction efficiency for polar analytes (phenolic compounds and nitroaromatic explosives) was decreased by less than 20% at the extraction time of 30 min. Moreover, the kinetic data showed that the thinner the PDMS coating was, the less the uptake rate of polar analytes into PI extraction phase decreased. Finally, polar poly (phthalazine ether sulfone ketone) (PPESK) extraction phase was also coated with ultrathin PDMS coating to verify the universality of the strategy. Generally, the water adsorption problem in polar SPME was overcome to a great extent, and the extraction efficiency of polar analytes was mainly preserved with this ultrathin PDMS coating, which could broaden the application of SPME in the environmental field. (C) 2018 Elsevier B.V. All rights reserved.
机译:与热解吸 - 气相色谱(TD-GC)偶联的固相微萃取(SPME)已成为水样中挥发性有机化合物(VOC)和半挥发性有机化合物(SVOC)的强大分析工具。然而,在萃取过程中通常是不可避免的水吸附,并且热解吸期间大量水蒸气的爆发将对GC分离和探测器引起严重问题。 Pawliszyn的小组已经证明,几十微米厚,无缺陷的聚二甲基硅氧烷(PDMS)涂层可以作为水吸附的完美屏障,并在复杂的基质中提供更好的相容性。然而,PDMS外涂层大部分地将极性分析物的摄取率降低到内吸附剂中。为了量化PDMS涂层厚度对水吸附量的影响和提取动力学,使用超薄PDMS层用聚酰亚胺(PI)作为本作工作中的模型涂覆极性萃取相。令人惊讶的是发现厚度小于一个微米的PDMS涂层可以将水吸附量降低96%,而极性分析物(酚类化合物和硝基芳族炸药)的提取效率在提取时间下降小于20% 30分钟。此外,动力学数据显示,PDMS涂层的较薄是极性分析到PI提取相的降低降低的较少。最后,涂有极性聚(酞菁醚砜酮)(PPESK)萃取相涂覆有超薄PDMS涂层,以验证策略的普遍性。通常,在很大程度上克服了极性SPME中的水吸附问题,极极分析物的提取效率主要用这种超薄的PDMS涂层保存,这可以扩大SPME在环境场中的应用。 (c)2018年elestvier b.v.保留所有权利。

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