College of Chemistry and Pharmaceutical Sciences , Qingdao Agricultural University , Qingdao 266109 , People's Republic of China.
Anal Chem. 2019 Nov 5;91(21):13831-13837. doi: 10.1021/acs.analchem.9b03311. Epub 2019 Oct 10.
Exploring the fabrication of an electrode with high photoelectric conversion efficiency and abundant functional groups for ideal photoelectrochemical (PEC) sensor development is highly urgent but faces a significant challenge. Herein we report an electropolymerization strategy for the preparation of phenothiazine polymeric film on an indium tin oxide (ITO) surface (PPT/ITO), within only a few seconds, and monomers. The fabricated PPT/ITO electrode possessed excellent stability and abundant quaternary ammonium salt groups for developing a highly sensitive PEC sensor through electrostatic binding with negatively charged materials. In this context, a CdS QDs-functionalized PPT/ITO electrode (CdS/PPT/ITO) was proposed and applied to the analysis of chlorpyrifos, used as a model target organophosphorous pesticide (OP). The thiocholine generated from acetylcholinesterase (AChE)-induced catalyzed hydrolysis of acetylthiocholine (ATCh) efficiently directed CdS QDs away from PPT/ITO via electrostatic repulsion, subsequently decreasing PEC current, whereas chlorpyrifos prohibited the generation of thiocholine through inhibiting AChE activity. As compared to the case where chlorpyrifos is absent, significantly enhanced PEC current is determined and is proportional to chlorpyrifos amounts. Thus, the developed CdS/PPT/ITO-based PEC sensor achieved excellent chlorpyrifos biosensing with improved sensitivity down to approximately ng/mL level with good specificity. We envision the proposed strategy will provide a new path to conveniently fabricate photoelectrodes possessing high performance, which will have more useful applications in PEC sensing.
探索制备具有高光电转换效率和丰富官能团的电极,以理想的光电化学(PEC)传感器的发展是非常紧迫的,但面临着重大的挑战。在此,我们报告了一种在氧化铟锡(ITO)表面上制备吩噻嗪聚合膜(PPT/ITO)的电聚合策略,仅需几秒钟和单体。所制备的 PPT/ITO 电极具有出色的稳定性和丰富的季铵盐基团,可通过与带负电荷的材料静电结合来开发高灵敏度的 PEC 传感器。在此背景下,提出了一种 CdS QDs 功能化的 PPT/ITO 电极(CdS/PPT/ITO),并将其应用于分析作为模型目标有机磷农药(OP)的毒死蜱。乙酰胆碱酯酶(AChE)诱导的乙酰硫代胆碱(ATCh)催化水解产生的硫代胆碱通过静电排斥有效地将 CdS QDs 从 PPT/ITO 上赶走,从而导致 PEC 电流减少,而毒死蜱通过抑制 AChE 活性阻止硫代胆碱的产生。与不存在毒死蜱的情况相比,确定了明显增强的 PEC 电流,并且与毒死蜱的量成正比。因此,所开发的基于 CdS/PPT/ITO 的 PEC 传感器实现了出色的毒死蜱生物传感,具有提高的灵敏度,可达到约 ng/mL 水平,并且具有良好的特异性。我们预计,所提出的策略将为制备具有高性能的光电极提供一条新途径,这将在 PEC 传感中具有更多有用的应用。