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Hierarchical Thin Film Architectures for Enhanced Sensor Performance: Liquid Crystal-Mediated Electrochemical Synthesis of Nanostructured Imprinted Polymer Films for the Selective Recognition of Bupivacaine

机译:用于增强传感器性能的分层薄膜体系结构:液晶介导的电化学合成纳米结构的印迹聚合物膜用于选择性识别布比卡因

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摘要

Nanostructured bupivacaine-selective molecularly imprinted 3-aminophenylboronic acid-p-phenylenediamine co-polymer (MIP) films have been prepared on gold-coated quartz (Au/quartz) resonators by electrochemical synthesis under cyclic voltammetric conditions in a liquid crystalline (LC) medium (triton X-100/water). Films prepared in water and in the absence of template were used for control studies. Infrared spectroscopic studies demonstrated comparable chemical compositions for LC and control polymer films. SEM studies revealed that the topologies of the molecularly imprinted polymer films prepared in the LC medium (LC-MIP) exhibit discernible 40 nm thick nano-fiber structures, quite unlike the polymers prepared in the absence of the LC-phase. The sensitivity of the LC-MIP in a quartz crystal microbalance (QCM) sensor platform was 67.6 ± 4.9 Hz/mM under flow injection analysis (FIA) conditions, which was ≈250% higher than for the sensor prepared using the aqueous medium. Detection was possible at 100 nM (30 ng/mL), and discrimination of bupivacaine from closely related structural analogs was readily achieved as reflected in the corresponding stability constants of the MIP-analyte complexes. The facile fabrication and significant enhancement in sensor sensitivity together highlight the potential of this LC-based imprinting strategy for fabrication of polymeric materials with hierarchical architectures, in particular for use in surface-dependent application areas, e.g., biomaterials or sensing.
机译:纳米布比卡因选择性分子印迹的3-氨基苯基硼酸-对苯二胺共聚物(MIP)膜是在循环伏安条件下,在液晶(LC)介质中,通过电化学合成在镀金石英(Au /石英)谐振器上制备的。 (triton X-100 /水)。在水中和没有模板的情况下制备的膜用于对照研究。红外光谱研究表明,LC和对照聚合物薄膜的化学成分相当。 SEM研究表明,在LC介质(LC-MIP)中制备的分子印迹聚合物膜的拓扑显示出可辨别的40 nm厚的纳米纤维结构,这与在没有LC相的情况下制备的聚合物完全不同。在流动注射分析(FIA)条件下,石英晶体微天平(QCM)传感器平台中LC-MIP的灵敏度为67.6±4.9 Hz / mM,比使用水性介质制备的传感器高约250%。可以100 nM(30 ng / mL)的浓度进行检测,并且布比卡因与密切相关的结构类似物的区别很容易实现,这反映在MIP-分析物复合物的相应稳定性常数中。简便的制造和传感器灵敏度的显着提高共同凸显了这种基于LC的压印策略在制造具有层次结构的聚合物材料方面的潜力,特别是用于与表面相关的应用领域,例如生物材料或传感领域。

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