| Literature DB >> 31395795 |
Mohammad Mahdi Moein1, Abbi Abdel-Rehim2, Mohamed Abdel-Rehim3,4.
Abstract
Due to their selectivity and chemical stability, molecularly imprinted polymers have attracted great interest in sample preparation. Imprinted polymers have been applied for the extraction and the enrichment of different sorts of trace analytes in biological and environmental samples before their analysis. Additionally, MIPs are utilized in various sample preparation techniques such as SPE, SPME, SBSE and MEPS. Nevertheless, molecularly imprinted polymers suffer from thermal (stable only up to 150 °C) and mechanical stability issues, improper porosity and poor capacity. The sol-gel methodology as a promising alternative to address these limitations allowing the production of sorbents with controlled porosity and higher surface area. Thus the combination of molecularly imprinted technology and sol-gel technology can create influential materials with high selectivity, high capacity and high thermal stability. This work aims to present an overview of molecularly imprinted sol-gel polymerization methods and their applications in analytical and bioanalytical fields.Entities:
Keywords: dummy; in-tip; magnetic nanoparticles; molecularly imprinted polymers; monolithic column; nanofiber; sol-gel; solid phase extraction; solid phase microextraction
Mesh:
Substances:
Year: 2019 PMID: 31395795 PMCID: PMC6720762 DOI: 10.3390/molecules24162889
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Sol-gel concept and variety [18].
Figure 2On-line capillary tube connected to HPLC [39].
Figure 3MIP xerogel in a needle [41].
Figure 4In-tip MSG [31].
Figure 5Schematic method using MIP nanofiber preparation, structure and operation [46].
Figure 6Nano-magnetic MIP preparation with sol-gel [47].
MSG application in diffenert sample prepartion methods.
| Analyte | Sample Preparation Method | Instrumentation | Matrix | Ref |
|---|---|---|---|---|
| Enrofloxacin | SPE | HPLC | Fish and chicken samples | [ |
| Methyl-3-quinoxaline-2-carboxylic acid and quinoxaline-2-carboxylic acid | SPE | HPLC | Pork muscle | [ |
| Cloxacilloic acid | SPE | HPLC | Cloxacillin | [ |
| 2,4-Dichlorophenoxyacetic | SPE | FT-IR | Aqueous media | [ |
| Florfenicol | SPE | HPLC | Meat samples | [ |
| Chrysoidine | SPE | HPLC | Food samples | [ |
| Vitamin D3 | SPE | HPLC | Aqueous samples | [ |
| Polar organophosphorus pesticides | SPE | LC-MS | Almond oil | [ |
| Phthalate esters | SPE | GC-MS | Water sample | [ |
| Sulfonicacid dyes | SPE | HPLC | Beverage samples | [ |
| Sudan IV | SPE | HPLC | Chili samples | [ |
| Cu(II) | SPE | HPLC | Herbal medicines | [ |
| Bisphenol A | SPE | HPLC | Aqueous samples | [ |
| Iprodione fungicide | SPE | HPLC | Wine | [ |
| Methadone | SPE | HPLC | Human plasma | [ |
| Diethylstilbestrol | SPE | HPLC | Milk samples | [ |
| Bisphenol A | SPE | HPLC | Beverage samples | [ |
| Fentanyl | Capillary-SPME | HPLC | Urine and plasma samples | [ |
| Organophosphorous pesticides | Fiber-SPME | GC | Vegetable samples | [ |
| Bilirubin | Needle-SMPE | LC-MS/MS | Plasma and urine samples | [ |
| Organophosphorous pesticides | Stainless steel wire-SPME | GC | Fresh and dry foods | [ |
| Monolithic in tip | LC-MS/MS | Human plasma and urine samples | [ | |
| Vanillin and methyl vanillin | Monolithic in tip | HPLC | Milk powder | [ |
| Hippuric acid | Hollow fiber liquid-phase microextraction | LC-MS/MS | Human plasma and urine samples | [ |
| Acesulfame | Nanofiber-SPME | HPLC | Beverage samples | [ |
| Bovine serum albumin | Magnetic nanomaterials | FT-IR | Bovine blood sample | [ |
| Bovine serum albumin | Ionic liquid/Multiwall carbon nanotube | UV-Vis | Human serum albumin and bovine hemoglobin | [ |
| Thiabendazole and carbendazim | Sorptive monolith nanoparticles/stir-bar | HPLC | Orange samples | [ |
| Naproxen | Xerogel | HPLC | Aqueous samples | [ |
| ( | Xerogel composite | HPLC | Aqueous samples | [ |
| C14-C20 fatty acid | Xerogel composite | Fluorescence spectroscopy | Hair samples | [ |
| Salicylic acid | Xerogel composite | Fluorescence spectroscopy | Skin | [ |