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[新型样品制备材料在环境污染物分析检测中的研究进展]

[Recent advance of new sample preparation materials in the analysis and detection of environmental pollutants].

作者信息

Feng Juanjuan, Ji Xiangping, Li Chunying, Sun Mingxia, Han Sen, Feng Jiaqing, Sun Haili, Feng Yang, Sun Min

机构信息

School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, China.

出版信息

Se Pu. 2021 Aug;39(8):781-801. doi: 10.3724/SP.J.1123.2021.02030.

Abstract

To successfully analyze complex samples and detect trace targets, sample pretreatment is essential. Efficient sample pretreatment techniques can remove or reduce interference from the sample matrix. It can also enrich analytes, thereby improving analytical accuracy and sensitivity. In recent years, various sample preparation techniques, including SPE, magnetic dispersion SPE, pipette tip SPE, stir bar extraction, fiber SPME, and in-tube SPME, have received increasing attention in environmental analysis and monitoring. The extraction efficiency mainly depends on the type of adsorbent material. Therefore, the development of efficient adsorbents is a crucial step toward sample preparation. This review summarizes and discusses the research advances in extraction materials over recent years. These extraction materials contain inorganic adsorbents, organic adsorbents, and inorganic-organic hybrid materials such as graphene, graphene oxide, carbon nanotubes, inorganic aerogels, organic aerogels, triazinyl-functionalized materials, triazine-based polymers, molecularly imprinted polymers, covalent organic frameworks, metal-organic frameworks, and their derivatives. These materials have been applied to extract different types of pollutants, including metal ions, polycyclic aromatic hydrocarbons, plasticizers, alkanes, phenols, chlorophenols, chlorobenzenes, polybrominated diphenyl ethers, perfluorosulfonic acids, perfluorocarboxylic acids, estrogens, drug residues, and pesticide residues, from environmental samples (such as water and soil samples). These sample preparation materials possess high surface areas, numerous adsorption sites, and allow extraction via various mechanisms, such as , electrostatic, hydrophobic, and hydrophilic interactions, as well as hydrogen and halogen bond formation. Various sample pretreatment techniques based on these extraction materials have been combined with various detection methods, including chromatography, mass spectrometry, atomic absorption spectroscopy, fluorescence spectroscopy, and ion mobility spectroscopy, and have been extensively used for the determination of environmental pollutants. The existing challenges associated with the development of sample preparation techniques are proposed, and prospects for such extraction materials in environmental analysis and monitoring are discussed. Major trends in the field, including the development of efficient extraction materials with high enrichment ability, good selectivity, excellent thermal stability, and chemical stability, are discussed. Green sample pretreatment materials, environmentally friendly synthesis methods, and green sample pretreatment methods are also explored. Rapid sample pretreatment methods that can be conducted within minutes or seconds are of significant interest. Further, online sample pretreatment and automatic analysis methods have attracted increasing attention. Besides, real-time analysis and in situ detection have been important development directions, and are expected to be widely applicable in environmental analysis, biological detection, and other fields. Modern synthesis technology should be introduced to synthesize specific extraction materials. Controllable preparation methods for extraction materials, such as the in situ growth or in situ preparation of extraction coatings, will acquire importance in coming years. It will also be important to adopt high-performance materials from other fields for sample pretreatment. Organic-inorganic hybrid extraction materials can combine the advantages both organic materials and inorganic materials, and mutually compensate for any disadvantages. Extraction materials doped with nanomaterials are also promising. Although existing sample pretreatment techniques are relatively efficient, it is still imperative to develop novel sample preparation methods.

摘要

为了成功分析复杂样品并检测痕量目标物,样品预处理至关重要。高效的样品预处理技术可以去除或减少样品基质的干扰。它还可以富集分析物,从而提高分析的准确性和灵敏度。近年来,包括固相萃取(SPE)、磁性分散固相萃取、移液器吸头固相萃取、搅拌棒萃取、纤维固相微萃取和管内固相微萃取在内的各种样品制备技术在环境分析和监测中受到越来越多的关注。萃取效率主要取决于吸附剂材料的类型。因此,开发高效吸附剂是样品制备的关键一步。本综述总结并讨论了近年来萃取材料的研究进展。这些萃取材料包括无机吸附剂、有机吸附剂以及无机-有机杂化材料,如石墨烯、氧化石墨烯、碳纳米管、无机气凝胶、有机气凝胶、三嗪基功能化材料、三嗪基聚合物、分子印迹聚合物、共价有机框架、金属有机框架及其衍生物。这些材料已被应用于从环境样品(如水样和土壤样品)中萃取不同类型的污染物,包括金属离子、多环芳烃、增塑剂、烷烃、酚类、氯酚、氯苯、多溴二苯醚、全氟磺酸、全氟羧酸、雌激素、药物残留和农药残留。这些样品制备材料具有高表面积、大量吸附位点,并允许通过各种机制进行萃取,如静电、疏水和亲水相互作用,以及氢键和卤键的形成。基于这些萃取材料的各种样品预处理技术已与各种检测方法相结合,包括色谱法、质谱法、原子吸收光谱法、荧光光谱法和离子迁移谱法,并已广泛用于环境污染物的测定。提出了样品制备技术发展中存在的挑战,并讨论了此类萃取材料在环境分析和监测中的前景。讨论了该领域的主要趋势,包括开发具有高富集能力、良好选择性、优异热稳定性和化学稳定性的高效萃取材料。还探索了绿色样品预处理材料、环境友好的合成方法和绿色样品预处理方法。能够在几分钟或几秒钟内完成的快速样品预处理方法备受关注。此外,在线样品预处理和自动分析方法也越来越受到关注。此外,实时分析和原位检测一直是重要的发展方向,有望在环境分析、生物检测等领域得到广泛应用。应引入现代合成技术来合成特定的萃取材料。萃取材料的可控制备方法,如萃取涂层的原位生长或原位制备,在未来几年将变得重要。采用其他领域的高性能材料进行样品预处理也将很重要。有机-无机杂化萃取材料可以结合有机材料和无机材料的优点,并相互弥补缺点。掺杂纳米材料的萃取材料也很有前景。尽管现有的样品预处理技术相对高效,但开发新型样品制备方法仍然势在必行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/544b/9404022/3ee75aa04e28/cjc-39-08-781-img_1.jpg

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