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协同信号放大引发的创新型自供电光电化学适体传感:一种由高光捕获光阳极激活的巧妙光阴极。

Synergistic Signal Amplification-Initiated Innovative Self-Powered Photoelectrochemical Aptasensing: An Ingenious Photocathode Activated by the High-Light-Harvesting Photoanode.

作者信息

Yang Peilin, Jiang Huihui, Zhang Hang, Hou Xiuli, Gao Xin, Liu Qian

机构信息

Key Laboratory of Modern Agricultural Equipment and Technology, Ministry of Education, School of Agricultural Engineering, Jiangsu University, Zhenjiang, Jiangsu 212013, China.

出版信息

Anal Chem. 2023 May 9;95(18):7303-7311. doi: 10.1021/acs.analchem.3c00337. Epub 2023 Apr 25.

Abstract

Exploiting ingenious photoelectrodes and innovative signal amplification strategies has the potential to achieve high sensitivity in self-powered cathodic photoelectrochemical (PEC) analysis. In this work, a novel self-powered PEC sensing platform was constructed by integrating a synergistic signal amplification of an ingenious photocathode with a high light-harvesting photoanode. In the dual photoelectrode-based PEC system, the amplified photocurrent signals were induced by a synergistic enhancement: (1) the photocurrent of the BiOBr photocathode was improved by the incorporation of nitrogen-doped graphene; (2) the photocurrent of the self-powered sensor was activated by the high-light-harvesting BiS-CN photoanode. Subsequently, the rational mechanism for synergistic signal amplification was investigated. For the construction of the sensing interface, an aptamer was introduced as the recognition element to specifically capture the streptomycin (STR) target. Under optimal conditions, the constructed self-powered aptasensor has the merits of good linear range (1 × 10 to 5 × 10 M), acceptable limit of detection (1.18 × 10 M), and excellent stability and selectivity for STR detection. Additionally, the proposed self-powered aptasensor showed acceptable accuracy for the detection of STR in water. Hopefully, this might stimulate more interest in designing and constructing novel platforms for exquisite photocathodic monitoring of various contaminants in the environment.

摘要

利用巧妙的光电极和创新的信号放大策略,有可能在自供电阴极光电化学(PEC)分析中实现高灵敏度。在这项工作中,通过将巧妙的光阴极与高光捕获光阳极的协同信号放大相结合,构建了一种新型的自供电PEC传感平台。在基于双光电极的PEC系统中,放大的光电流信号是由协同增强诱导产生的:(1)通过掺入氮掺杂石墨烯提高了BiOBr光阴极的光电流;(2)高光捕获的BiS-CN光阳极激活了自供电传感器的光电流。随后,研究了协同信号放大的合理机制。为了构建传感界面,引入了适体作为识别元件来特异性捕获链霉素(STR)靶标。在最佳条件下,构建的自供电适体传感器具有良好的线性范围(1×10至5×10 M)、可接受的检测限(1.18×10 M)以及对STR检测具有出色的稳定性和选择性等优点。此外,所提出的自供电适体传感器在检测水中的STR时显示出可接受的准确性。有望这可能会激发更多人对设计和构建用于环境中各种污染物精细光阴极监测的新型平台的兴趣。

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