[管内磁增强固相微萃取材料制备及应用研究进展]。

Ya-Na Luo, Jia Chen, Yu-Yu Hu, Shi-Jie Gao, Yan-Li Wang, Yan-Ming Liu, Juan-Juan Feng, Min Sun
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引用次数: 0

摘要

选择合适的样品制备方法是色谱分离和检测前的重要步骤。由于样品基质的复杂性和分析物的痕量浓度,用仪器直接分析样品是困难的。大多数样品制备方法存在操作程序复杂、使用大量有机溶剂、多步骤过程中易丢失分析物等缺点,不能满足现代工业对分析样品检测的高要求。开发简单、环保、高效、快速的制备方法是分析化学领域不断发展的前沿研究领域。在众多可用的样品制备技术中,管内固相微萃取(IT-SPME)正受到广泛关注。IT-SPME通过将目标分析物萃取到毛细管内表面来富集目标分析物,已应用于环境和食品领域的各种分析物的提取。it - spme的优势在于它消耗的有机溶剂量少,而且毛细管力学稳定,是一种很有前途的样品制备技术。为了进一步提高萃取效率和选择性,将磁场引入到固相微萃取体系中,从而发展了管内磁增强固相微萃取(ME-IT-SPME)这一新技术。ME-IT-SPME利用磁场对目标物进行分离富集,在吸附和洗脱过程中对萃取柱施加不同强度的磁场。顺磁介质中的抗磁性物质在外加磁场作用时,往往集中在磁场较弱的区域。目标分析物在洗脱后用色谱法检测。优化了条件,建立了一种分析方法,并将其用于实际样品中的目标检测,与IT-SPME相比,提取灵敏度和精密度都有所提高,分析时间更短,提取效率更高。本文回顾了ME-IT-SPME技术自2012年问世以来结合各种分析仪器的应用情况,分析了其分析检测优势。基于与分析物的疏水相互作用、氢键、π-π和极性相互作用、配位等萃取机制,ME-IT-SPME采用了创新的功能萃取材料,包括纳米材料、单片材料和磁性杂化材料,这些材料都具有高表面积和大量吸附位点。毛细管微萃取柱是用开管毛细管、颗粒填充毛细管或整体毛细管制备的。当ME-IT-SPME与色谱仪结合使用时,可以检测到多种分析物,包括有机农药残留,重金属离子,除草剂,防腐剂和药物分子。ME-IT-SPME技术广泛应用于环境分析、食品分析和生物医学领域。未来的ME-IT-SPME技术发展应包括:(1)关注磁性提取材料的可重复使用性和稳定性;(2)发现高富集和选择性的新提取材料,以分析更多种类的目标;(3)进一步创新ME-IT-SPME技术,将其与其他更灵敏的分析方法相结合,并考虑其在其他领域的应用;(4)连接不同的毛细血管,同时富集多种分析物;(5)探索高磁场对分析物的影响(6)将该技术与先进的便携式分析仪器相结合,实现现场实时靶标分析;(7)开发可用于高效、选择性提取生物大分子药物的免疫亲和萃取管。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

[Research progress in material preparation and application of magnetism-enhanced in-tube solid-phase microextraction].

[Research progress in material preparation and application of magnetism-enhanced in-tube solid-phase microextraction].

[Research progress in material preparation and application of magnetism-enhanced in-tube solid-phase microextraction].

[Research progress in material preparation and application of magnetism-enhanced in-tube solid-phase microextraction].

Selecting a suitable sample preparation method is a significant step prior to chromatographic separation and detection. Directly analyzing samples instrumentally is difficult owing to the complexity of the sample matrix and the trace concentration of analytes. Most sample preparation methods have disadvantages, including complicated operating procedures, the use of large amounts of organic solvent, and ease of analyte loss during multistep processes; consequently, they do not meet the high analytical sample detection requirements of modern industry. The development of simple, environmentally friendly, efficient, and rapid preparation methods is a continuing frontier research area in the analytical chemistry field. Among the many available sample preparation techniques, in-tube solid-phase microextraction (IT-SPME) is receiving extensive attention. IT-SPME enriches the target analytes by extracting them to the inner surface of the capillary tube, and has been applied to extract various analytes in the environmental and food fields. IT-SPME is advantageous because it consumes low amounts of organic solvent and capillaries are mechanical stable; consequently, IT-SPME is a promising sample preparation technique. Magnetic field has been introduced to the IT-SPME system to further improve extraction efficiency and selectivity, leading to the development of magnetism-enhanced in-tube solid-phase microextraction (ME-IT-SPME) as a new technology. ME-IT-SPME uses magnetic field to separate and enrich targets, with different magnetic-field strengths applied to the extraction column during adsorption and elution. Diamagnetic substances in a paramagnetic medium tend to concentrate in regions where the magnetic field is weak when an external magnetic field is applied. Target analytes are detected chromatographically following elution. Conditions are optimized and an analytical method is established and used to detect targets in actual samples, leading to improved extraction sensitivity and precision compared to those obtained using IT-SPME, including shorter analysis time and superior extraction efficiency. This paper reviews the applications of ME-IT-SPME technology in combination with various analytical instruments since its inception in 2012, and analyzes its analysis and detection advantages. Based on hydrophobic interactions, hydrogen bonding, π-π and polarity interactions, coordination, and other extraction mechanisms with analytes, ME-IT-SPME uses innovative functional extraction materials, including nanomaterials, monolithic materials, and magnetic hybrid materials, all of which have high surface areas and numerous adsorption sites. Capillary microextraction columns are prepared using open-tubular capillary, particle-filling capillary, or monolithic capillaries. Diverse analytes are detected when ME-IT-SPME is combined with chromatograph, including organic pesticide residues, heavy-metal ions, herbicides, preservatives, and drug molecules. ME-IT-SPME technology is widely used in the environmental-analysis, food-analysis, and biomedical fields. Future, ME-IT-SPME technological developments should include: (1) focus on the reusability and stability of the magnetic extraction material; (2) discovering new extraction materials that are highly enriching and selective in order to analyze a greater variety of targets; (3) further innovating ME-IT-SPME technology by combining it with other more-sensitive analytical methods and considering its use in other fields; (4) connecting different capillaries to simultaneously enrich a variety of analytes; (5) exploring how the higher magnetic field influences extraction efficiency by designing new magnetic-field-regulating devices with small thermal interference; (6) combining the technology with advanced portable analytical instruments to realize real-time target analysis in the field; (7) exploiting immuno-affinitive extraction tubes that can be used to highly efficiently and selectively extract biological macromolecular drugs.

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