[Progress in the application of novel nano-materials to the safety analysis of agricultural products].

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Ran-Feng Zhou, Hui-Xian Zhang, Xiao-Li Yin, Xi-Tian Peng
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引用次数: 0

Abstract

The quality and safety of agricultural products are strongly related to human livelihood. Thus, the government and consumers have recently paid increased attention to the quality and safety of agricultural products. The development of efficient, rapid, and sensitive analytical methods for detecting pesticides, veterinary drugs, heavy metals, mycotoxins, and environmental pollutants in agricultural products is of great significance. Owing to the complexity of many sample matrices and the low concentration of pollutants in a typical sample, appropriate sample pretreatment steps are necessary to enrich pollutants in agricultural products. Solid-phase extraction (SPE) is the most widely used sample pretreatment technology; in this technique, the adsorbent generally determines the selectivity and efficiency of the extraction process. An increasing number of novel materials have been used as SPE adsorbents. The extraction efficiency, extraction selectivity, and analytical throughput of SPE could be greatly improved by combining these novel materials with various extraction modes (e. g., solid-phase microextraction, dispersed SPE, and magnetic SPE (MSPE)) during sample preparation. Because of their large specific surface area and high affinity toward target analytes, nanomaterials are often used as SPE adsorbents, thereby greatly improving the selectivity and sensitivity of the analytical technology. More importantly, these materials have become a priority area of research on preconcentration technologies for trace compounds in agricultural products. This paper summarizes the adsorption characteristics of several new nanomaterials, including magnetic materials, carbon-based materials, metal nanomaterials (MNs), metal oxide nanomaterials (MONs), metal organic frameworks (MOFs), and covalent organic frameworks (COFs). These nanomaterials present numerous advantages, such as large specific surface areas, high adsorption capacities, and tailorable structural designs. MSPE employs magnetic materials as sorbents to afford fast dispersion and efficient recycling when applied to complex sample matrices under an external magnetic field. The use of MSPE can avoid several typical problems associated with SPE such as poor adsorbent packing and high pressure, thereby greatly simplifying the pretreatment process and providing a high flux for sample analysis. Carbon-based materials are powdered or bulk nonmetallic solid materials with carbon as the main component; carbon and nitrogen materials, mesoporous carbon, carbon nanotubes, and graphene are some examples of these materials. These materials provide large specific surface areas, abundant pore structures, good thermal stability, high mechanical strength and adsorption capacity, and controllable morphology. Pure and modified carbon nanomaterials have been successfully used to purify target analytes from agricultural products. Given their unique physical and chemical properties, MNs and MONs have attracted significant interest for use in sample preparation. MNs and MONs with excellent thermal and mechanical stabilities show good resistance to a wide pH range and diverse organic solvents, which is crucial in adsorbent-based extraction methods. The surface of these materials can be easily modified with various ligands to improve their selectivity. MOFs and COFs present many advantages such as large specific surface areas, high porosity, adjustable pore performance, and good thermal stability. Several methods that employ novel adsorbent materials to analyze pollutants in a variety of agricultural products, such as chromatography, spectroscopy, mass spectrometry, and other detection technologies, have been established. This paper also reviews the application of adsorbent materials in the analysis of agricultural product quality and safety, and discusses the future development trends of these sorbents in sample preparation for the safety analysis of agricultural products.

【新型纳米材料在农产品安全分析中的应用进展】。
农产品的质量安全与民生息息相关。因此,政府和消费者最近越来越关注农产品的质量和安全。开发高效、快速、灵敏的检测农产品中农药、兽药、重金属、真菌毒素和环境污染物的分析方法具有重要意义。由于许多样品基质的复杂性和典型样品中污染物的低浓度,需要采取适当的样品预处理步骤来富集农产品中的污染物。固相萃取(SPE)是应用最广泛的样品预处理技术;在该技术中,吸附剂通常决定萃取过程的选择性和效率。越来越多的新型材料被用作SPE吸附剂。在样品制备过程中,将这些新型材料与各种提取模式(如固相微萃取、分散SPE和磁性SPE)相结合,可以大大提高SPE的提取效率、提取选择性和分析量。纳米材料由于其大的比表面积和对目标分析物的高亲和力,经常被用作SPE吸附剂,从而大大提高了分析技术的选择性和灵敏度。更重要的是,这些材料已成为农产品中微量化合物预富集技术的优先研究领域。本文综述了几种新型纳米材料的吸附特性,包括磁性材料、碳基材料、金属纳米材料(MNs)、金属氧化物纳米材料(MONs)、有机金属框架(MOFs)和共价有机框架(COFs)。这些纳米材料具有许多优点,如大比表面积、高吸附能力和可定制的结构设计。当应用于外部磁场下的复杂样品基质时,MSPE采用磁性材料作为吸附剂,以提供快速分散和高效回收。MSPE的使用可以避免与SPE相关的几个典型问题,如吸附剂填充不良和高压,从而大大简化预处理过程,并为样品分析提供高通量。碳基材料是以碳为主要成分的粉末状或块状非金属固体材料;碳和氮材料、介孔碳、碳纳米管和石墨烯是这些材料的一些例子。这些材料具有大的比表面积、丰富的孔结构、良好的热稳定性、高的机械强度和吸附能力以及可控的形态。纯碳纳米材料和改性碳纳米材料已成功用于从农产品中纯化目标分析物。鉴于其独特的物理和化学性质,MNs和MONs在样品制备中的应用引起了极大的兴趣。具有优异热稳定性和机械稳定性的MNs和MONs对宽pH范围和多种有机溶剂表现出良好的耐受性,这在基于吸附剂的提取方法中至关重要。这些材料的表面可以很容易地用各种配体修饰,以提高它们的选择性。MOFs和COFs具有比表面积大、孔隙率高、孔性能可调和热稳定性好等优点。已经建立了几种使用新型吸附材料分析各种农产品中污染物的方法,如色谱法、光谱法、质谱法和其他检测技术。本文还综述了吸附材料在农产品质量安全分析中的应用,并讨论了这些吸附剂在农产品安全分析样品制备中的未来发展趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
色谱
色谱 CHEMISTRY, ANALYTICAL-
CiteScore
1.30
自引率
42.90%
发文量
7198
期刊介绍: "Chinese Journal of Chromatography" mainly reports the basic research results of chromatography, important application results of chromatography and its interdisciplinary subjects and their progress, including the application of new methods, new technologies, and new instruments in various fields, the research and development of chromatography instruments and components, instrument analysis teaching research, etc. It is suitable for researchers engaged in chromatography basic and application technology research in scientific research institutes, master and doctoral students in chromatography and related disciplines, grassroots researchers in the field of analysis and testing, and relevant personnel in chromatography instrument development and operation units. The journal has columns such as special planning, focus, perspective, research express, research paper, monograph and review, micro review, technology and application, and teaching research.
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