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基于量子点修饰碳带电极的纸基电化学发光平台用于重现性电致化学发光发射。

Quantum dot (QD)-modified carbon tape electrodes for reproducible electrochemiluminescence (ECL) emission on a paper-based platform.

机构信息

Institute of Analytical Chemistry for Life Science, School of Public Health, Nantong University, Nantong, People's Republic of China.

出版信息

Anal Chem. 2012 Mar 20;84(6):3033-8. doi: 10.1021/ac2033968. Epub 2012 Mar 1.

Abstract

Stable and sensitive electrochemiluminescence (ECL) detection relies on successful immobilization of quantum dots (QDs) on working electrodes. Herein, we report a new technique to apply double-sided carbon adhesive tape as the working electrode to improve the stability and reproducibility of QD-based ECL emission. CdS QD-modified electrodes were prepared by dropping and drying CdS QD suspension on the carbon adhesive tape supported by indium tin oxide (ITO) glass. The ECL detection was performed with the prepared electrode on a paper-based platform. We tested our system using H(2)O(2) of various concentrations and demonstrated that consistent ECL emission could be obtained. We attribute stable and reproducible ECL emission to the robust attachment of CdS QDs on the carbon adhesive tape. The proposed method could be used to quantify the concentration of dopamine from 1 μM to 10 mM based on the quenching effect of dopamine on ECL emission of CdS QD system using H(2)O(2) as the coreactant. Our approach addressed the problem in the integration of stable QD-based ECL detection with portable paper-based analytical devices. The similar design offers great potential for low-cost electrochemical and ECL analytical instruments.

摘要

稳定且灵敏的电化学发光(ECL)检测依赖于成功将量子点(QD)固定在工作电极上。在此,我们报告了一种新技术,即将双面碳胶带用作工作电极,以提高基于 QD 的 ECL 发射的稳定性和重现性。通过将 CdS QD 悬浮液滴在由氧化铟锡(ITO)玻璃支撑的碳胶带上并干燥,制备了 CdS QD 修饰电极。在基于纸张的平台上,使用制备好的电极进行 ECL 检测。我们使用各种浓度的 H 2 O 2 测试了我们的系统,并证明可以获得一致的 ECL 发射。我们将稳定且重现的 ECL 发射归因于 CdS QD 在碳胶带上的牢固附着。基于 H 2 O 2 作为共反应物对 CdS QD 体系 ECL 发射的猝灭效应,该方法可用于定量检测 1 μM 至 10 mM 浓度的多巴胺。我们的方法解决了将稳定的基于 QD 的 ECL 检测与便携式基于纸张的分析设备集成的问题。类似的设计为低成本电化学和 ECL 分析仪器提供了巨大的潜力。

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