[Progress in preparation of hollow nanomaterials and their application to sample pretreatment].

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL 色谱 Pub Date : 2023-06-08 DOI:10.3724/SP.J.1123.2022.09027
Xue-Mei Wang, Li-Xia Huang, Na Yuan, Peng-Fei Huang, Xin-Zhen DU, Xiao-Quan Lu
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However, the applications of these methods are limited by their low extraction efficiency, complicated operation, long time consumption, unstable recovery, use of large amounts of organic solvents, and large error rates. Several new sample pretreatment techniques, including solid-phase extraction, magnetic solid-phase extraction, solid-phase microextraction, and dispersive solid-phase extraction, have been developed and rapidly applied to various fields to overcome the shortcomings of traditional sample pretreatment methods. However, the development of adsorbent materials with high selectivity and enrichment capability remains a challenge in sample pretreatment technology, in which adsorbents with excellent adsorption performance are crucial. In recent years, various nanomaterials with remarkable properties have been introduced and applied to sample pretreatment, and numerous nano-extraction materials with diverse functions and high selectivity and enrichment capability have been developed. Hollow nanomaterials are nanoparticles with large voids in their solid shells. Owing to their advantageous properties, which include a large effective surface area, abundant internal space, low density, variety of preparation methods, structural and functional tailorability, short mass transmission path, and high carrying capacity, hollow nanomaterials show great application potential in sample pretreatment. The extraction mechanism of these materials is based on the synergistic effects of <i>π-π</i> stacking, electrostatic, hydrogen-bonding, and hydrophobic interactions to achieve the efficient separation and enrichment of the target analytes. 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Abstract

Sample pretreatment technology plays a vital role in the analysis of complex samples and is key to the entire analytical process. Its main purpose is to separate the substance to be measured from the sample matrix or interfering substances in the sample and to achieve a state in which the instrument can be analyzed and detected. Traditional sample pretreatment techniques include liquid-liquid extraction, liquid-solid extraction, precipitation separation, solvent volatilization-rotary evaporation, filtration, and centrifugation. However, the applications of these methods are limited by their low extraction efficiency, complicated operation, long time consumption, unstable recovery, use of large amounts of organic solvents, and large error rates. Several new sample pretreatment techniques, including solid-phase extraction, magnetic solid-phase extraction, solid-phase microextraction, and dispersive solid-phase extraction, have been developed and rapidly applied to various fields to overcome the shortcomings of traditional sample pretreatment methods. However, the development of adsorbent materials with high selectivity and enrichment capability remains a challenge in sample pretreatment technology, in which adsorbents with excellent adsorption performance are crucial. In recent years, various nanomaterials with remarkable properties have been introduced and applied to sample pretreatment, and numerous nano-extraction materials with diverse functions and high selectivity and enrichment capability have been developed. Hollow nanomaterials are nanoparticles with large voids in their solid shells. Owing to their advantageous properties, which include a large effective surface area, abundant internal space, low density, variety of preparation methods, structural and functional tailorability, short mass transmission path, and high carrying capacity, hollow nanomaterials show great application potential in sample pretreatment. The extraction mechanism of these materials is based on the synergistic effects of π-π stacking, electrostatic, hydrogen-bonding, and hydrophobic interactions to achieve the efficient separation and enrichment of the target analytes. Given their noteworthy physicochemical properties, hollow nanomaterials have gained wide attention in various research fields and are considered a research frontier in the field of materials science. Changing the structure or surface properties of the core and shell can lead to various hollow nanomaterials with unique properties. Such changes can create synergy between the physicochemical properties and structural function of the original core-shell material, leading to novel materials with superior performance compared with the starting materials and broad application prospects in sample pretreatment. Nevertheless, only a few hollow nanomaterials with diverse structures and functions are currently used for sample pretreatment, and their adsorption capacity for target analytes is often unsatisfactory. Consequently, enhancing the adsorption selectivity of these materials toward various analytes is the most important step in sample pretreatment. First, hollow nanomaterials with a large specific surface area and suitable pore size can be designed to achieve the specific adsorption of target analytes of varying sizes. The combination of hollow nanomaterials with other materials presenting desirable adsorption properties could also lead to synergistic effects and enhance the performance of composite hollow nanomaterials. In addition, more green methods to prepare hollow nanomaterials with outstanding selectivity can be explored to achieve the superior adsorption of a specific target analyte. Efforts to synthesize hollow nanomaterials have been met with great success, but the available synthesis methods still suffer from complicated steps, high costs, relatively harsh conditions, and the use of highly toxic substances. This paper summarizes the main types of hollow nanomaterials, their synthesis methods, and research progress on sample pretreatment technologies (solid-phase extraction, solid-phase microextraction, magnetic solid-phase extraction, and dispersive solid-phase extraction) and describes the challenges encountered in the synthesis of hollow nanomaterials. The applications and developments of hollow nanomaterials in sample pretreatment are also discussed.

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[空心纳米材料的制备及其在样品预处理中的应用研究进展]。
样品前处理技术在复杂样品分析中起着至关重要的作用,是整个分析过程的关键。其主要目的是将待测物质与样品基质或样品中的干扰物质分离,达到仪器可以被分析和检测的状态。传统的样品前处理技术包括液-液萃取、液-固萃取、沉淀分离、溶剂挥发-旋转蒸发、过滤和离心。但这些方法萃取效率低、操作复杂、耗时长、回收率不稳定、有机溶剂用量大、误差率大等限制了其应用。固相萃取、磁固相萃取、固相微萃取、分散固相萃取等新型样品前处理技术得到了发展,并迅速应用于各个领域,克服了传统样品前处理方法的不足。然而,开发具有高选择性和富集能力的吸附剂材料仍然是样品前处理技术的一个挑战,其中具有优异吸附性能的吸附剂至关重要。近年来,各种性能优异的纳米材料被引入并应用于样品前处理,许多功能多样、具有高选择性和富集能力的纳米萃取材料被开发出来。空心纳米材料是在固体外壳上有大空隙的纳米颗粒。空心纳米材料具有有效表面积大、内部空间丰富、密度低、制备方法多样、结构和功能可定制、传质路径短、承载能力高等优点,在样品前处理中显示出巨大的应用潜力。这些材料的萃取机理是基于π-π堆积、静电、氢键和疏水相互作用的协同作用,实现目标分析物的高效分离和富集。空心纳米材料由于其优异的物理化学性能,在各个研究领域受到了广泛的关注,被认为是材料科学领域的一个研究前沿。改变核和壳的结构或表面性质可以得到各种具有独特性能的空心纳米材料。这种变化可以使原始核壳材料的物理化学性质和结构功能协同作用,从而产生性能优于起始材料的新型材料,在样品预处理中具有广阔的应用前景。然而,目前用于样品前处理的空心纳米材料结构和功能各异,其对目标分析物的吸附能力往往不理想。因此,提高这些材料对各种分析物的吸附选择性是样品预处理中最重要的一步。首先,可以设计具有较大比表面积和合适孔径的中空纳米材料,实现对不同尺寸的目标分析物的特异性吸附。将中空纳米材料与其他具有良好吸附性能的材料结合,也可以产生协同效应,增强复合中空纳米材料的性能。此外,可以探索更多绿色的方法来制备具有突出选择性的空心纳米材料,以实现对特定目标分析物的优越吸附。合成空心纳米材料的努力已经取得了巨大的成功,但现有的合成方法仍然存在步骤复杂、成本高、条件相对恶劣以及使用剧毒物质等问题。本文综述了空心纳米材料的主要类型及其合成方法,以及样品前处理技术(固相萃取、固相微萃取、磁固相萃取和分散固相萃取)的研究进展,并介绍了空心纳米材料合成中遇到的挑战。讨论了空心纳米材料在样品前处理中的应用及发展。
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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.
期刊最新文献
[Off-line comprehensive two-dimensional countercurrent chromatography-liquid chromatography separation of Curcuma volatile oil]. [Advances in synthesis methods and applications of microporous organic networks for sample preparation]. [Application progress of on-line sample preparation techniques coupled with liquid chromatography-mass spectrometry system in the detection of food hazards]. [Chiral capillary gas chromatography for the separation of the enantiomers of 4-chloromethyl-2,2-dimethyl-1,3-dioxolane]. [Determination of 14 β-agonists in animal meat by ultra high performance liquid chromatography-tandem mass spectrometry].
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