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Compact Hybrid (Gold Nanodendrite-Quantum Dots) Assembly: Plasmon Enhanced Fluorescence-Based Platform for Small Molecule Sensing in Solution

机译:紧凑型混合(金纳米树枝状-量子点)组件:等离子增强型基于荧光的平台,用于溶液中的小分子传感

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In this study, we have presented a novel plasmon enhanced fluorescence (PEF) system for label-free sensing of small molecules in bulk solution. The amine-terminated gold nanodendrite (AuND) and carboxyl-terminated QDs directly assemble each other by amine-carboxyl attraction. Without any spacer layers, PEF can be increased by 4 times during the formation of the compact hybrid (AuND-QDs) assembly. Both experiment and finite-difference time domain calculation results indicate that the distinct solution-PEF effect is ascribed to two reasons: (1) The used AuNDs simultaneously possess four features in morphology and topology, well-defined superstructure, sharp tips and edges, moderately elongated subunits, and smaller size. (2) The hybrid (AuND-QDs) assembly has a very compact structure. So, the fluorescence is well enhanced by the effective increase of excitation and radiative decay rates with the decrease of scattering effect. The (AuND-QDs) assembly is then employed for sensing of trinitrotoluene (TNT), one of the highly explosive and environmentally detrimental substances, in bulk solution. The sensing principle is that the analytes can react with primary amines on the AuND surface and form Meisenheimer complexes, which break the preformed assemblies and result in the fluorescence recovery of the QDs. The linear range is 0-8.8 nM with 0.05 nM detection limit. The present quasi-picomole level sensitivity is one of the best results for fluorescent TNT sensing. The developed method is successfully applied to TNT sensing in real environmental samples, indicating the practical potential.
机译:在这项研究中,我们提出了一种新型的等离激元增强荧光(PEF)系统,用于无标记感测本体溶液中的小分子。胺端基的金纳米树枝状晶体(AuND)和羧基端基的量子点通过胺基羧基的吸引彼此直接组装。如果没有任何间隔层,则在紧凑型混合动力(AuND-QDs)组件形成过程中,PEF可以增加4倍。实验结果和时域有限差分计算结果均表明,PEF的明显影响归因于以下两个原因:(1)所使用的AuNDs同时具有四个特征:形态和拓扑,轮廓分明的上部结构,尖锐的尖端和边缘。亚基细长,尺寸较小。 (2)混合组件(AuND-QDs)具有非常紧凑的结构。因此,通过有效增加激发和辐射衰减率并降低散射效应,可以很好地增强荧光。然后,将(AuND-QDs)组件用于传感散装溶液中的三硝基甲苯(TNT),这是一种高度爆炸性和对环境有害的物质。感测原理是分析物可以与AuND表面上的伯胺反应并形成Meisenheimer配合物,这会破坏预制的装配并导致QD的荧光恢复。线性范围为0-8.8 nM,检测极限为0.05 nM。当前的准螺孔水平灵敏度是荧光TNT感测的最佳结果之一。所开发的方法已成功应用于实际环境样品中的TNT感测,表明了其实际潜力。

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