Institute for Advanced Interdisciplinary Research, ‡Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, and §School of Chemistry and Chemical Engineering, University of Jinan , Jinan 250022, P. R. China.
ACS Appl Mater Interfaces. 2017 Sep 27;9(38):32591-32598. doi: 10.1021/acsami.7b10629. Epub 2017 Sep 15.
In this report, a 3D microfluidic lab-on-paper device for ultrasensitive detection of lead cation was designed using phoenix tree fruit-shaped CeO nanoparticles (PFCeO NPs) as the catalyst and 50 nm silver NPs (Ag NPs) as the quencher. First, snowflake-like Ag NPs were grown on the paper working electrode through an in situ growth method and used as a matrix for DNAzymes that were specific for lead ions (Pb). After the addition of Ag NP-labeled substrate strands, the Ag NPs restrained the electrochemiluminescence (ECL) intensity of luminol greatly through the resonance energy transfer from luminol to Ag NPs. However, under the existence of Pb, the substrate strands were separated, and then PFCeO NP-labeled signal strands were hybridized with the DNAzymes. The ECL signal was improved greatly under the fast catalytic reaction between PFCeO NPs and HO, which converted the response from signal off to signal on state, resulting in sensitive detection of Pb. Under the optimal conditions, the ECL signal response exhibited a good linear relationship with the logarithm of lead cation in a wide linear range of 0.05-2000 nM and an ultralow detection limit of 0.016 nM. Meanwhile, a sensor featured with good specificity, acceptable stability, reproducibility, and low cost provides a promising portable, simple, and effective strategy for Pb detection.
本报告设计了一种基于菲尼克斯果形 CeO 纳米粒子(PFCeO NPs)作为催化剂和 50nm 银纳米粒子(Ag NPs)作为猝灭剂的用于超灵敏检测铅阳离子的 3D 微流控纸基芯片装置。首先,通过原位生长法在纸工作电极上生长出雪花状 Ag NPs,并将其用作针对铅离子(Pb)的 DNA 酶的基质。添加 Ag NP 标记的底物链后,Ag NPs 通过从鲁米诺到 Ag NPs 的共振能量转移极大地抑制了鲁米诺的电化学发光(ECL)强度。然而,在存在 Pb 的情况下,底物链被分离,然后 PFCeO NP 标记的信号链与 DNA 酶杂交。在 PFCeO NPs 和 HO 之间的快速催化反应下,ECL 信号大大增强,将响应从信号关闭转换为信号开启状态,从而实现对 Pb 的敏感检测。在最佳条件下,ECL 信号响应与铅阳离子的对数在 0.05-2000 nM 的宽线性范围内呈现良好的线性关系,检测限低至 0.016 nM。同时,该传感器具有良好的选择性、可接受的稳定性、重现性和低成本,为 Pb 检测提供了一种有前景的便携式、简单有效的策略。