Literature DB >> 34212580

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

Juanjuan Feng1, Xiangping Ji1, Chunying Li1, Mingxia Sun1, Sen Han1, Jiaqing Feng1, Haili Sun1, Yang Feng1, Min Sun1.   

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 π-π, 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.

Entities:  

Keywords:  aerogels; carbon nanotubes; covalent organic frameworks; environmental pollutants; metal-organic frameworks; molecular imprinting materials; sample pretreatment; triazine-based materials

Year:  2021        PMID: 34212580      PMCID: PMC9404022          DOI: 10.3724/SP.J.1123.2021.02030

Source DB:  PubMed          Journal:  Se Pu        ISSN: 1000-8713


  102 in total

1.  Graphene and graphene oxide sheets supported on silica as versatile and high-performance adsorbents for solid-phase extraction.

Authors:  Qian Liu; Jianbo Shi; Jianteng Sun; Thanh Wang; Lixi Zeng; Guibin Jiang
Journal:  Angew Chem Int Ed Engl       Date:  2011-05-12       Impact factor: 15.336

2.  Evaluation of carbon aerogel-based solid-phase extraction sorbent for the analysis of sulfur mustard degradation products in environmental water samples.

Authors:  Piia Jõul; Merike Vaher; Maria Kuhtinskaja
Journal:  Chemosphere       Date:  2018-02-06       Impact factor: 7.086

3.  Vortex-assisted solid-phase extraction based on metal-organic framework/chitosan-functionalized hydrophilic sponge column for determination of triazine herbicides in environmental water by liquid chromatography-tandem mass spectrometry.

Authors:  Yanxiao Jiang; Zucheng Qin; Fanghui Liang; Jingkang Li; Ying Sun; Xinghua Wang; Pinyi Ma; Daqian Song
Journal:  J Chromatogr A       Date:  2021-01-06       Impact factor: 4.759

4.  Preparation of a magnetic multiwalled carbon nanotube@polydopamine/zeolitic imidazolate framework-8 composite for magnetic solid-phase extraction of triazole fungicides from environmental water samples.

Authors:  Xiaodong Huang; Yanan Liu; Guangyang Liu; Lingyun Li; Xiaomin Xu; Shuning Zheng; Donghui Xu; Haixiang Gao
Journal:  RSC Adv       Date:  2018-07-16       Impact factor: 4.036

5.  Pipette-tip solid-phase extraction using poly(1-vinylimidazole-co-trimethylolpropane trimethacrylate) as a new molecularly imprinted polymer in the determination of avermectins and milbemycins in fruit juice and water samples.

Authors:  Roseane Andrade Teixeira; Diego Hernando Ângulo Flores; Ricky Cássio Santos da Silva; Flávia Viana Avelar Dutra; Keyller Bastos Borges
Journal:  Food Chem       Date:  2018-04-22       Impact factor: 7.514

6.  Melamine-formaldehyde aerogel coating for in-tube solid-phase microextraction.

Authors:  Juanjuan Feng; Xiuqin Wang; Yu Tian; Chuannan Luo; Min Sun
Journal:  J Chromatogr A       Date:  2018-09-24       Impact factor: 4.759

7.  An organic-inorganic hybrid silica aerogel prepared by co-precursor method for solid-phase microextraction coating.

Authors:  Yu Tian; Juanjuan Feng; Xiuqin Wang; Chuannan Luo; Herman Maloko Loussala; Min Sun
Journal:  Talanta       Date:  2018-10-18       Impact factor: 6.057

8.  Functionalized ionic liquids-supported metal organic frameworks for dispersive solid phase extraction of sulfonamide antibiotics in water samples.

Authors:  Dingkun Lu; Chang Liu; Menghan Qin; Jingjing Deng; Guoyue Shi; Tianshu Zhou
Journal:  Anal Chim Acta       Date:  2020-08-12       Impact factor: 6.558

View more
  3 in total

1.  Silica Aerogel Hybridized with Melamine-Terephthalaldehyde Polymer for In-Tube Solid-Phase Microextraction of Polycyclic Aromatic Hydrocarbons from Environment Water.

Authors:  Qiong Jiang; Shuwu Zhang; Juanjuan Feng; Min Sun
Journal:  Nanomaterials (Basel)       Date:  2022-05-22       Impact factor: 5.719

2.  [In-site electrophoretic elution of excessive fluorescein isothiocyanate from fluorescent particles in gel for image analysis].

Authors:  Guohong Chen; Zehua Guo; Yiren Cao; Liuyin Fan; Weiwen Liu; Yixin Ma; Chengxi Cao; Qiang Zhang
Journal:  Se Pu       Date:  2022-07

3.  [Determination of five nonsteroidal anti-inflammatory drugs in water by dispersive solid phase extraction-ultra performance liquid chromatography-tandem mass spectrometry based on metal-organic framework composite aerogel].

Authors:  Huijuan Ling; Gege Wu; Shuang Li; Qian Zhou; Chunxin Li; Jiping Ma
Journal:  Se Pu       Date:  2022-04
  3 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.