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Molecularly imprinted polymer-based extended-gate field-effect transistor chemosensors for selective determination of antiepileptic drug.

Authors
Yang, Jin ChulShin, NariLim, Seok JinCho, Chae HwanHazarika, DeepshikhaPark, Jong PilPark, Jinyoung
Issue Date
Jul-2024
Publisher
SPRINGER WIEN
Keywords
Antiepileptic drug; Drain current; Extended-gate field-effect transistor; Imprinting factor; Molecular imprinting; Zinc oxide pattern
Citation
Mikrochimica acta, v.191, no.7
Journal Title
Mikrochimica acta
Volume
191
Number
7
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/74725
DOI
10.1007/s00604-024-06487-x
ISSN
0026-3672
1436-5073
Abstract
Ultrathin molecularly imprinted polymer (MIP) films were deposited on the surfaces of ZnO nanorods (ZNRs) and nanosheets (ZNSs) by electropolymerization to afford extended-gate field-effect transistor sensors for detecting phenytoin (PHT) in plasma. Molecular imprinting efficiency was optimized by controlling the contents of functional monomers and the template in the precursor solution. PHT sensing was performed in plasma solutions with various concentrations by monitoring the drain current as a function of drain voltage under an applied gate voltage of 1.5 V. The reliability and reproducibility of the fabricated sensors were evaluated through a solution treatment process for complete PHT removal and PHT adsorption-removal cycling, while selectivity was examined by analyzing responses to chemicals with structures analogous to that of PHT. Compared with the ZNS/extracted-MIP sensor and sensors with non-imprinted polymer (NIP) films, the ZNR/extracted-MIP sensor showed superior responses to PHT-containing plasma due to selective PHT adsorption, achieving an imprinting factor of 4.23, detection limit of 12.9 ng/mL, quantitation limit of 53.0 ng/mL, and selectivity coefficients of 3-4 (against tramadol) and ~ 5 (against diphenhydramine). Therefore, we believe that the MIP-based ZNR sensing platform is promising for the practical detection of PHT and other drugs and evaluation of their proper dosages. © 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature.
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