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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Hotspots engineering by grafting Au@Ag core-shell nanoparticles on the Au film over slightly etched nanoparticles substrate for on-site paraquat sensing
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Hotspots engineering by grafting Au@Ag core-shell nanoparticles on the Au film over slightly etched nanoparticles substrate for on-site paraquat sensing

机译:通过将Au @ Ag核壳纳米颗粒接枝到Au膜上的经过轻微蚀刻的纳米颗粒基质上进行现场百草枯感应的热点工程

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摘要

Paraquat (PQ) pollutions are ultra-toxic to human beings and hard to be decomposed in the environment, thus requiring an on-site detection strategy. Herein, we developed a robust and rapid PQ sensing strategy based on the surface-enhanced Raman scattering (SERS) technique. A hybrid SERS substrate was prepared by grafting the Au@Ag core-shell nanoparticles (NPs) on the Au film over slightly etched nano particles (Au FOSEN). Hotspots were engineered at the junctions as indicated by the finite difference time domain calculation. SERS performance of the hybrid substrate was explored using p-ATP as the Raman probe. The hybrid substrate gives higher enhancement factor comparing to either the Au FOSEN substrate or the Au@Ag core-shell NPs, and exhibits excellent reproducibility, homogeneity and stability. The proposed SERS substrates were prepared in batches for the practical PQ sensing. The total analysis time for a single sample, including the pre-treatment and measurement, was less than 5 min with a PQ detection limit of 10 nM. Peak intensities of the SERS signal were plotted as a function of the PQ concentrations to calibrate the sensitivity by fitting the Hill's equation. The plotted calibration curve showed a good log-log linearity with the coefficient of determination of 0.98. The selectivity of the sensing proposal was based on the "finger print" Raman spectra of the analyte. The proposed substrate exhibited good recovery when it applied to real water samples, including lab tap water, bottled water, and commercially obtained apple juice and grape juice. This SERS-based PQ detection method is simple, rapid, sensitive and selective, which shows great potential in pesticide residue and additives abuse monitoring. (C) 2016 Elsevier B.V. All rights reserved.
机译:百草枯(PQ)污染对人类具有极高的毒性,并且难以在环境中分解,因此需要采取现场检测策略。在本文中,我们基于表面增强拉曼散射(SERS)技术开发了一种强大且快速的PQ感应策略。通过将Au @ Ag核壳纳米颗粒(NPs)接枝到Au膜上略微蚀刻的纳米颗粒(Au FOSEN)上,制备了混合SERS衬底。如有限差分时域计算所示,在交界处设计了热点。使用p-ATP作为拉曼探针探索了杂交底物的SERS性能。与Au FOSEN底物或Au @ Ag核壳NPs相比,杂化底物具有更高的增强因子,并且具有出色的重现性,均质性和稳定性。建议的SERS基板已分批准备用于实际PQ感应。单个样品的总分析时间(包括预处理和测量)少于5分钟,PQ检测限为10 nM。将SERS信号的峰值强度绘制为PQ浓度的函数,以通过拟合Hill方程来校准灵敏度。绘制的校准曲线显示出良好的对数-对数线性,测定系数为0.98。传感方案的选择性基于分析物的“指纹”拉曼光谱。拟议的底物应用于真实水样(包括实验室自来水,瓶装水和商业上获得的苹果汁和葡萄汁)时,具有良好的回收率。这种基于SERS的PQ检测方法简单,快速,灵敏且选择性强,在农药残留和添加剂滥用监测中显示出巨大的潜力。 (C)2016 Elsevier B.V.保留所有权利。

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