National Engineering Research Center for Fine Petrochemical Intermediates, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou730000, P. R. China.
Key Laboratory of Pesticide and Chemical Biology (CCNU), Ministry of Education, College of Chemistry, Central China Normal University, Wuhan 430079, P. R. China.
Anal Chem. 2021 Apr 6;93(13):5430-5436. doi: 10.1021/acs.analchem.0c05033. Epub 2021 Mar 24.
Nanopore-based detection techniques, with a wide range of transport properties, exhibit impressive selectivity and sensitivity for analytes. To expand the application of nanoporous sensors, real-time and fast detection of targets, all within a portable device, is highly desired for nanopore-based sensors. In addition, to improve the accuracy of the output signal, more appropriate readout methods also need to be explored. In this manuscript, we describe a nanopore-based electrode, regarded as NAC-P6-PC@AuE, prepared by coupling a pillararene-based nanoporous membrane with an electrochemical impedance measurement method. The fabricated device is demonstrated by exposing pillararene-based receptors to trace amounts of pesticide molecules. NAC-P6-PC@AuE devices exhibit distinguished selectivity to quinotrione, as well as the ability to quantify quinotrione with a limit of quantitation (LOQ) of 10 nM. The mechanism that allows sensing was verified using finite-element simulations and may be explained as host-guest-induced surface charge shielding, which influences the electrochemical response of probe molecules. The applications of this nanopore-based electrode may be extended toward other target molecules by decorating the nanopore surfaces with specifically chosen receptors.
基于纳米孔的检测技术具有广泛的传输特性,对分析物表现出令人印象深刻的选择性和灵敏度。为了扩展纳米孔传感器的应用,人们非常希望在便携式设备中实现对目标的实时和快速检测。此外,为了提高输出信号的准确性,还需要探索更合适的读出方法。在本文中,我们描述了一种基于纳米孔的电极,称为 NAC-P6-PC@AuE,它是通过将基于柱状芳烃的纳米多孔膜与电化学阻抗测量方法相结合制备而成的。通过将基于柱状芳烃的受体暴露于痕量农药分子,证明了所制备的器件具有出色的选择性。NAC-P6-PC@AuE 器件对喹恶酮表现出明显的选择性,并且能够定量检测喹恶酮,其定量限 (LOQ) 为 10 nM。使用有限元模拟验证了允许传感的机制,其可以解释为主体-客体诱导的表面电荷屏蔽,这会影响探针分子的电化学响应。通过用特定选择的受体修饰纳米孔表面,这种基于纳米孔的电极的应用可以扩展到其他目标分子。