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beta-Cyclodextrin grafted gold nanoparticles with short molecular spacers applied for nanosensors based on plasmonic effects

机译:β-环糊精接枝金纳米颗粒,具有短分子间隔物,用于基于等离子体效应的纳米传感器

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The detection and quantification of organic molecules is of vital importance in many areas as Biochemistry, Medicine, Environmental Chemistry, etc. The Supramolecular systems as macrocycles form host guest complexes that they can be applied to the design of Nanosensors due to their capabilities of molecular recognition. In this work it was used beta-CD that it is a very well-known host for organic molecules. The beta CD was attached by covalent linking over gold nanoparticle surface modified with molecular spacers. The guest studied was Rhodamine B (RhB) as a typical organic molecule that absorbs at the interval 500-600 run that it overlaps perfectly with the gold Nanoparticles Plasmon. By this manner the selectivity of this Nanosensor works by a Suprarnolecular interaction and a Plasmonic complementarity. The beta CD Nanoparticles grafted interact and form Nanoaggregates and depending of the state of development it was the effect obtained on the fluorescence emission. Nanoaggregates sizes below 500 nm, due to the short distances of the molecular spacers the guest emission was quenched. With higher Nanoaggregates it was measured an enhanced fluorescence emission effect based on Enhanced Plasmonics (EP) and Metal Enhanced Fluorescence (MEF). These Nanoaggregates were applied as Nanoplatforms for molecular detection. Based on these Nanoarchitectures it was possible to estimate the number of molecules detected per Nanoaggregate by NanoImaging with fluorescence microscopy. The sensitivity (m) of the Nanosensor allowed to arrive to limit of detections (LOD) close to 0.98 nM. From Fluorescence Nanolmaging it was possible to detect two distribution of Nanoaggregates; the first one smaller than 500 nm and the second one higher aggregates, from where it was possible to detect at the best of the cases a minimal and a maximal number of molecules of 15 and 400 respectively per Nanoaggregate unit In order to validate the sensitivity of the Nanosensor, it was tested in real sampl
机译:有机分子的检测和定量在许多领域是生物化学,医学,环境化学等的重要意义。作为宏ycles的超分子系统,宏观杂志形成主人复合物,因为它们可以应用于纳米传感器的设计,因为它们的分子识别能力。在这项工作中,它被使用β-CD,它是有机分子的非常知名的宿主。通过用分子间隔物改性的金纳米颗粒表面上的共价连接,通过共价连接βCD。研究的客人是罗丹明B(RHB),作为典型的有机分子,其在间隔500-600中吸收它与金纳米颗粒等离子体完全重叠。通过这种方式,该纳米传感器的选择性通过Suprarbular相互作用和等离子体互补性起作用。 βCD纳米颗粒接枝相互作用和形成纳米聚糖,并取决于发育状态,它是在荧光发射对荧光发射获得的效果。由于分子间隔物的短距离淬火,因此纳米凝结尺寸低于500nm以下。具有较高的纳米聚糖,它是基于增强的血浆(EP)和金属增强荧光(MEF)的增强的荧光发射效果。将这些纳米聚糖施加为用于分子检测的纳米载物。基于这些纳米建筑结构,可以通过纳米模次与荧光显微镜进行纳米谱来估计每种纳米结晶检测的分子数。纳米传感器的敏感性(m)允许到达接近0.98nm的检测(LOD)限制。从荧光纳米游行中,可以检测纳米聚糖的两个分布;第一个小于500nm和第二一个较高的聚集体,从哪里可以检测到每个纳释单元的最佳情况下的最小和最大数量的15和400,以验证敏感性纳米传感器,它在真正的Sampl中进行了测试

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