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基于 TiO/S-BiVO@AgS 纳米复合材料的可见光驱动无标记光电流型免疫传感器用于灵敏检测OTA。

Visible-light driven label-free photoelectrochemical immunosensor based on TiO/S-BiVO@AgS nanocomposites for sensitive detection OTA.

机构信息

School of Chemical Engineering, Shandong University of Technology, Zibo 255049, PR China.

School of Chemical Engineering, Shandong University of Technology, Zibo 255049, PR China.

出版信息

Biosens Bioelectron. 2018 Jan 15;99:14-20. doi: 10.1016/j.bios.2017.07.029. Epub 2017 Jul 13.

Abstract

A label-free photoelectrochemical (PEC) platform with high visible-light activity for quantitative detection of the ochratoxin A (OTA) was developed by assembly of AgS nanoparticles (NPs) sensitized on titanium dioxide/red blood cell-like shape bismuth vanadate (TiO/S-BiVO) electrode via layer-by-layer (LBL) strategy. In this protocol, ascorbic acid was used as an efficient electron donor for scavenging photo-generated holes and inhibiting light driven electron-hole pair recombination. TiO has good photoelectric activity and large surface area. The S-BiVO with porous structure surfaces can contribute to the high photocurrent intensity under visible-light irradiation. Moreover, the AgS NPs were in-situ growth on surfaces of thioglycolic acid modified S-BiVO, which enhanced photocurrent response and further improved the photocurrent conversion efficiency. Under optimal conditions, the PEC immunosensor exhibited a wide linear concentration range from 5pgmL to 750ngmL, with a low detection limit of 1.7pgmL (S/N = 3) for OTA. Additionally, the designed immunosensor was performed with good stability, reproducibility and selectivity, thus opening up a new promising PEC platform for some other small molecules analysis.

摘要

一种无标记光电流化学(PEC)平台,具有高光活性,用于定量检测赭曲霉毒素 A(OTA),通过层层(LBL)策略将银硫化物纳米颗粒(NPs)组装在二氧化钛/红细胞状氧化铋钒(TiO/S-BiVO)电极上。在该方案中,抗坏血酸可用作有效电子供体,用于清除光生空穴并抑制光驱动电子-空穴对复合。TiO 具有良好的光电活性和大的表面积。具有多孔结构表面的 S-BiVO 可以在可见光照射下贡献高光电流强度。此外,AgS NPs 原位生长在巯基乙酸修饰的 S-BiVO 表面上,这增强了光电流响应,进一步提高了光电流转换效率。在最佳条件下,PEC 免疫传感器表现出从 5pgmL 到 750ngmL 的宽线性浓度范围,对 OTA 的检测限低至 1.7pgmL(S/N = 3)。此外,设计的免疫传感器具有良好的稳定性、重现性和选择性,因此为一些其他小分子的分析开辟了一个新的有前途的 PEC 平台。

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