Ministry-of-Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, No.368 Youyi Avenue, Wuchang, Wuhan, 430062, China.
Ministry-of-Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, No.368 Youyi Avenue, Wuchang, Wuhan, 430062, China.
Anal Chim Acta. 2023 Aug 15;1269:341405. doi: 10.1016/j.aca.2023.341405. Epub 2023 May 22.
Owing to their intrinsic amplifying effect together with chemical stability, graphene electrochemical transistor sensors (GECTs) are gaining momentum for sensing applications. However, the surface of GECTs for different detection substances must be modified with different recognition molecules, which was cumbersome and lack a universal method. Molecularly imprinted polymer (MIP) is a kind of polymer with specific recognition function for given molecules. Here, MIP and GECTs were combined to effectively solve the problem of weak selectivity of GECTs, and achieve the high sensitivity and selectivity of MIP-GECTs equipment in detecting acetaminophen (AP) in complex urine environment. A novel molecular imprinting sensor based on Au nanoparticles modified zirconia (ZrO) inorganic molecular imprinting membrane on reduced graphene oxide (ZrO-MIP-Au/rGO) was proposed. ZrO-MIP-Au/rGO was synthesized by one-step electropolymerization using AP as template, ZrO precursor as the functional monomer. The -OH group on ZrO and the -OH/-CONH- group on AP were easily bonded by hydrogen bonding to form a MIP layer on the surface, which allows the sensor to have a large number of imprinted cavities for AP specific adsorption. As a proof of method, the GECTs based on ZrO-MIP-Au/rGO functional gate electrode has the characteristics of wide linear range (0.1 nM-4 mM), low detection limit (0.1 nM) and high selectivity for AP detection. These achievements highlight the introduction of specific and selective MIP to GECTs with unique amplification function, which could effectively solve the problem of selectivity of GECTs in complex environments, suggesting the potential of MIP-GECTs in real-time diagnosis.
由于其内在的放大效应和化学稳定性,石墨烯电化学晶体管传感器(GECTs)在传感应用中越来越受到关注。然而,不同检测物质的 GECTs 的表面必须用不同的识别分子进行修饰,这既繁琐又缺乏通用的方法。分子印迹聚合物(MIP)是一种对特定分子具有特定识别功能的聚合物。在这里,MIP 与 GECTs 结合,有效地解决了 GECTs 选择性弱的问题,并实现了 MIP-GECTs 设备在检测复杂尿液环境中对乙酰氨基酚(AP)的高灵敏度和选择性。提出了一种基于金纳米粒子修饰氧化锆(ZrO)无机分子印迹膜在还原氧化石墨烯(ZrO-MIP-Au/rGO)上的新型分子印迹传感器。ZrO-MIP-Au/rGO 通过以 AP 为模板、ZrO 前体为功能单体的一步电聚合合成。ZrO 上的-OH 基团和 AP 上的-OH/-CONH-基团通过氢键容易结合,在表面形成 MIP 层,使传感器具有大量的 AP 特异性吸附印迹空穴。作为方法的证明,基于 ZrO-MIP-Au/rGO 功能门电极的 GECTs 具有较宽的线性范围(0.1 nM-4 mM)、较低的检测限(0.1 nM)和对 AP 检测的高选择性。这些成果突出了将特异性和选择性 MIP 引入具有独特放大功能的 GECTs,可以有效地解决 GECTs 在复杂环境中的选择性问题,表明 MIP-GECTs 在实时诊断中的潜力。