[基于超分子衍生多孔有机聚合物的样品预处理方法研究的最新进展]。

Jing-Yan Kang, Yan-Ping Shi
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引用次数: 0

摘要

多孔有机聚合物(POPs)是一类由有机结构单元组成的材料,通常由 C、H、O、N 和 B 等元素及其他轻元素通过共价键连接而成。由于有机化学合成方法的多样性,持久性有机污染物可通过铃木偶联、园崎-萩原交叉偶联、席夫碱缩合、克诺文纳格尔缩合和弗里德尔-卡夫斯烷基化等方法制备。持久性有机污染物具有比表面积大、孔径可调、可定制性强、易于改性等特点,因此在样品预处理领域具有巨大的应用潜力。设计新的功能构件是推动持久性有机污染物发展的重要因素,也是高效分离和富集复杂基质中目标分子的关键。近年来,超分子衍生化合物以其优异的主客体识别特性、简单的功能化策略和可调整的拓扑构型,为持久性有机污染物的构建提供了新的灵感和突破。从空穴到框架 "的方法,即使用合适的连接剂将 0D 大环编织成分层的 2D 或 3D 持久性有机污染物,以及将超分子化学的研究范围从离散空穴扩展到刚性分层多孔有机框架,可显著提高超分子衍生化合物的孔隙率和稳定性。它们还能为扩大持久性有机污染物的结构多样性和生成具有高孔隙率的层状结构提供有效手段。本综述总结了冠醚基持久性有机污染物、环糊精基持久性有机污染物和钙烯基持久性有机污染物等不同结构的超分子衍生持久性有机污染物的制备策略和结构特征。然后,总结了这些材料在样品预处理中的应用前景,重点是食品分析和环境监测,包括环氧化物、有机染料、重金属、海藻毒素、卤素和抗生素药物。接下来,介绍了主要归因于超分子结构与分析物之间的主客识别、π-π 堆叠、氢键和静电相互作用的萃取机制。此外,还讨论了这些持久性有机污染物的不同制备策略和结构特征在样品预处理中的关键作用和潜在优势。最后,提出了超分子源持久性有机污染物的未来前景和仍然面临的挑战。超分子衍生持久性有机污染物不仅能在样品预处理过程中实现目标分析物的快速和选择性萃取,还能改善在线固相萃取技术的萃取效果。然而,尽管已开发出众多超分子衍生持久性有机污染物,但应用于样品前处理领域的却寥寥无几。因此,要拓展更多持久性有机污染物材料的应用潜力,还需要进一步的探索和研究。设计和合成具有高选择性识别性能的超分子持久性有机污染物仍是样品预处理领域的一个重要研究方向。
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[Recent advances in research on sample pretreatment methods based on supramolecular-derived porous organic polymers].

Porous organic polymers (POPs) are a class of materials composed of organic building blocks usually consisting of the elements C, H, O, N, and B and other light elements connected by covalent bonds. Owing to the diversity of synthesis methods in organic chemistry, POPs can be prepared by Suzuki coupling, Sonogashira-Hagihara cross-coupling, Schiff-base condensation, Knoevenagel condensation, and Friedel-Crafts alkylation. POPs show great application potential in the field of sample pretreatment because of their large specific surface area, adjustable pore size, high tailorability, and easy modification. The design of new functional building blocks is an important factor in advancing the development of POPs and is key to the efficient separation and enrichment of target molecules in complex substrates. In recent years, supramolecular-derived compounds have provided new inspiration and breakthroughs in the construction of POPs on account of their excellent host-guest recognition properties, simple functionalization strategies, and adjustable topological configurations. The "cavitand-to-framework" approach, that is, the knitting of 0D macrocycles into hierarchical 2D or 3D POPs using suitable linkers, and extension of the research scope of supramolecular chemistry from discrete cavities to rigidly layered porous organic frameworks can lead to significant improvements in the porosity and stability of supramolecular-derived compounds. They can also provide an effective means to expand the structural diversity of POPs and generate layered structures with high porosity. This review summarizes the preparation strategies and structural characteristics of supramolecular-derived POPs with different structures, such as crown ether-based POPs, cyclodextrin-based POPs, and calixarene-based POPs. The promising applications of these materials in sample pretreatment focusing on food analysis and environmental monitoring, including epoxides, organic dyes, heavy metals, algatoxins, halogens, and antibiotic drugs, are then summarized. Next, the extraction mechanisms mainly attributed to host-guest recognition, π-π stacking, and hydrogen-bonding and electrostatic interactions between the supramolecular structures and analytes are described. The key role and potential advantages of the different preparation strategies and structural characteristics of these POPs in sample pretreatment are also discussed. Finally, the future prospects and remaining challenges of supramolecular-derived POPs are proposed. Supramolecular-derived POPs can not only achieve the rapid and selective extraction of target analytes during sample pretreatment but also improve the extraction effect of online solid phase extraction technologies. However, although numerous supramolecular-derived POPs have been developed, few have been applied in the field of sample pretreatment. Thus, the expansion of the application potential of more POP materials requires further exploration and research. The design and synthesis of supramolecular-derived POPs with highly selective recognition performance remains an important research direction in the field of sample pretreatment.

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