4.7 Article

Biomimetic Electrochemical Sensors Based on Core-Shell Imprinted Polymers for Targeted Sunset Yellow Estimation in Environmental Samples

Journal

BIOSENSORS-BASEL
Volume 13, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/bios13040429

Keywords

adsorption; electrochemical sensors; molecularly imprinted polymers; precipitation polymerization; sunset yellow dye

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This study aimed to design a novel electrochemical sensor incorporating magnetite-based molecularly imprinted polymers (MMIPs). The SEM analysis revealed that MMIPs had a diameter of 57 nm and an irregular shape. XRD patterns showed both crystallinity and amorphous peaks. The crystallite size of MMIPs was determined to be 16.28 nm. FTIR bands confirmed the synthesis of MMIPs using specific monomers. The magneto-sensors exhibited high adsorption efficiency, selectivity, reusability, and strong structural stability, making them suitable for the detection of SY dye in real samples.
Magnetic molecularly imprinted polymers (MMIPs) contain the predesigned specialized recognition capability that can be chosen to build credible functional materials, that are easy to handle and have a good degree of specificity. Hence, the given piece of work is intended to design a novel electrochemical sensor incorporating magnetite-based molecularly imprinted polymers. The building materials consisted of a cross-linker (EGDMA), reaction-initiator (AIBN), monomer (methylene succinic acid-MSA), and template molecule (Sunset Yellow-SY dye). MMIPs exhibited a diameter of 57 nm with an irregular shape due to the presence of cavities based on SEM analysis. XRD patterns exhibited crystallinity, as well as amorphous peaks that are attributed to polymeric and non-polymeric frameworks of MMIPs. The crystallite size of the MMIPs from XRD analysis was found to be 16.28 nm based on the Debye-Scherrer's equation. Meanwhile, the FTIR bands showed the synthesis of MMIPs using monomer and methylene succinic acid. The sorption data at the optimized operating conditions (pH 2, sorbent dosage 3 mg, time 18 min) showed the highest sorption capacity of 40 mg/g. The obtained data best fitted to the Langmuir sorption isotherm and followed the pseudo-second-order kinetics. The magneto-sensors were applied for ultrasensitive, rapid, and simple sensing of SY dye. The electrochemical experiments were run at the operating condition range of (scan rate 10-50 mV/s, tads 0-120 s, pH 5-9, potential range 1-1.5 V for CV and 1-1.3 V for SWAdASV). The linear range of detection was set to 1.51 x 10(-6) M to 1.51 x 10(-6) M posing LOD and LOQ values of 8.6242 x 10(-5) M and 0.0002874 M, respectively. The regression analysis value for the calibration was found to be 0.950. Additionally, high adsorption efficiency, selectivity, reusability, and strong structural stability of the magneto-sensors showed potential use for SY detection in real samples. These characteristics make MMIPs a viable electrochemical substrate for the detection of chemical contaminants in the environment and in health-related products.

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