4.6 Article

Specific recognition of polyphenols by molecularly imprinted polymers based on a ternary deep eutectic solvent

期刊

JOURNAL OF CHROMATOGRAPHY A
卷 1530, 期 -, 页码 23-34

出版社

ELSEVIER
DOI: 10.1016/j.chroma.2017.11.011

关键词

Deep eutectic solvent; Molecularly imprinted polymer; Specific recognition; Kinetic; Isotherm

资金

  1. High-level Talents Introduction Program of Hebei University
  2. Open Project Fund of Key Laboratory of Natural Resources of Changbai Mountain & Functional Molecules (Yanbian University)
  3. Ministry of Education [NRFM201705]
  4. Hebei Province Universities Science and Technology Program - Hebei Province Education Department [02017017]
  5. Natural Science Foundation of Hebei Province [E2017201209]
  6. Top Young Talents Program of Hebei Province
  7. Scientific Research Project of Hebei Provincial High School [ZD2016136]

向作者/读者索取更多资源

Typically, a target compound is selected as a template for a molecularly imprinted polymer (MIP); however, some target compounds are not suitable as templates because of their poor solubility. Using the tailoring properties of a deep eutectic solvent (DES), the insoluble target compound caffeic acid was transformed into a ternary choline chloride-caffeic acid-ethylene glycol (ChCI-CA-EG) DES, which was then employed as a template to prepare MIPs. The ternary DES-based MIPs were characterized by Fourier transform infrared spectroscopy, elemental analysis, scanning electron microscopy, and atomic force microscopy. The effects of time, temperature, ionic strength, and pH on the recognition processes for four polyphenols (caffeic acid, protocatechuic acid, catechin, and epicatechin) by 13 ChCI-CA-EG ternary DES based MIPs was investigated using high-performance liquid chromatography. The recognition specificity of the MIPs for CA was significantly better than that for the other polyphenols, and the MIPs exhibited obvious characteristics of chromatographic packing materials. In addition, the recognition processes mainly followed a second-order kinetics model and the Freundlich isotherm model, which together indicated that the MIPs mainly recognized the polyphenols by chemical interactions including ion exchange, electron exchange, and new bond formation. Furthermore, the specific recognition ability of the MIPs for polyphenols, which was better than those of C-18, C-8, or non-molecularly imprinted polymer adsorbents, was successfully applied to the recognition of polyphenols in a Radix asteris sample. The transformation of an insoluble target compound in a polymeric DES for MIP preparation and recognition is a novel and feasible strategy suitable for use in further MIP research developments. (C) 2017 Elsevier B.V. All rights reserved.

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