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基于 CdS 敏化 ZnO 纳米管阵列作为光活性材料和 AuPd 合金纳米粒子作为电子汇的氧化铜诱导信号放大策略用于多元光电化学免疫传感。

CuO-induced signal amplification strategy for multiplexed photoelectrochemical immunosensing using CdS sensitized ZnO nanotubes arrays as photoactive material and AuPd alloy nanoparticles as electron sink.

机构信息

Key Laboratory of Chemical Sensing & Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, PR China.

Key Laboratory of Chemical Sensing & Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, PR China.

出版信息

Biosens Bioelectron. 2015 Apr 15;66:565-71. doi: 10.1016/j.bios.2014.12.020. Epub 2014 Dec 9.

Abstract

In this work, multiplexed photoelectrochemical (PEC) immunoassays are introduced into an indium tin oxide (ITO) device. Firstly, the ITO device is fabricated using a simple acid etch treatment method. Secondly, AuPd alloy nanoparticles are electro-deposited on ITO working electrodes as electron sink to construct the immunosensor platform. After that, ZnO nanotubes (ZNTs) arrays are synthesized via chemical etching of ZnO nanorods that are grown on AuPd surface by electrochemical deposition method. Subsequently, CdS is electro-deposited on ZNTs arrays and used as photoactive material. Then, CuO nanoseeds are labeled with signal antibodies and firstly used as PEC signal amplification label. The introduction of CuO brings signal amplification because of the conduction band (CB) of both CuO and ZnO are lower than that of CdS, CuO will compete the photo-induced electrons in CB of CdS with ZnO, leading to the decrease of the photocurrent intensity. Using cancer antigen 125, prostate specific antigen and α-fetoprotein as model analytes, the proposed immunoassay exhibits excellent precision and sensitivity. Meanwhile, this work provides a promising, addressable and simple strategy for the multi-detection of tumor markers.

摘要

在这项工作中,将多重光电化学(PEC)免疫分析引入到氧化铟锡(ITO)器件中。首先,使用简单的酸蚀刻处理方法制造 ITO 器件。其次,将 AuPd 合金纳米粒子电沉积在 ITO 工作电极上作为电子阱,以构建免疫传感器平台。然后,通过电化学沉积法在 AuPd 表面生长 ZnO 纳米棒,然后通过化学蚀刻合成 ZnO 纳米管(ZNTs)阵列。随后,将 CdS 电沉积在 ZNTs 阵列上,并用作光活性材料。然后,用信号抗体标记 CuO 纳米种子,并将其首先用作 PEC 信号放大标记。由于 CuO 和 ZnO 的导带(CB)均低于 CdS 的导带,因此 CuO 的引入会与 ZnO 竞争 CdS 的光致电子,从而导致光电流强度降低,从而实现信号放大。使用癌抗原 125、前列腺特异性抗原和甲胎蛋白作为模型分析物,所提出的免疫分析表现出优异的精度和灵敏度。同时,这项工作为肿瘤标志物的多检测提供了一种有前途、可寻址和简单的策略。

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