4.7 Article

Potentiometric sensor based on a computationally designed molecularly imprinted receptor

Journal

ANALYTICA CHIMICA ACTA
Volume 1239, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.aca.2022.340720

Keywords

Potentiometry; Ion -selective electrode; Molecularly imprinted polymer; Computer -aided design; Sulfadiazine

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Molecularly imprinted polymer (MIP)-based polymeric membrane potentiometric sensors are ideal for detecting organic species. The computer-aided design and synthesis of MIP receptors can replace traditional empirical methods, offering a general and easy approach for fabricating MIP-based electrochemical and optical sensors. The selection of the functional monomers is based on density functional theory calculations and the binding energies between the monomer and template molecules.
Molecularly imprinted polymer (MIP)-based polymeric membrane potentiometric sensors are ideal candidates for detection of organic species. The development of such sensors has opened new attractive horizons for potentiometric sensing. However, it should be noted that in the preparation of these MIP receptors, the selection of the functional monomer usually depends on empirical trial-and error-based optimization, which involves tedious and time-consuming experiments. In this work, the computer-aided design and synthesis of an MIP re-ceptor are applied in the fabrication of an MIP-based potentiometric sensor. The density functional theory calculation with the B3LYP model and 6-31G(d) basis set is used to study the interactions between the functional monomer and template molecules. The binding energies of the complexations between the template molecule and different functional monomers are used as a criterion for the selection of the proper monomer. The designed MIP is then synthesized and employed as the receptor for the fabrication of the potentiometric sensor. As a proof -of-concept experiment, the antibiotic sulfadiazine has been selected as a model and 4 functional monomers, 2-hydroxyethyl methacrylate, methyl methacrylate, N-isopropylacrylamide and N-phenylacrylamide, have been chosen. The designed MIP-based sensor exhibits excellent sensitivity with a linear range of 1-10 mu M and also shows a good selectivity. We believe that the proposed computer-aided synthesis technique for the MIP receptor selection can provide a general and facile way to replace the traditional empirical MIP preparation method in the fabrication of MIP-based electrochemical and optical sensors.

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