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Tailored polymer–metal fractal nanocomposites: an approach to highly active surface enhanced Raman scattering substrates

机译:量身定制的聚合物-金属分形纳米复合材料:一种高活性表面增强拉曼散射基底的方法

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An important design approach for sensitive and robust surface enhanced Raman scattering (SERS) substrates is the use of metal nanoparticle aggregates with nanometer tailored interstitial distances between their surfaces, in order to confine the electromagnetic energy. The nanostructural instability of the aggregates to agglomeration due to their strong van der Waals force poses a challenge for the preparation of large-scale, reliable SERS substrates. We present a novel route for preparing stable and highly active SERS substrates using polymer–metal fractal nanocomposites. This methodology is based on the unique morphology of fractal nanocomposite structures formed just below the percolation threshold that consists of extremely narrow (~0.8 nm) interstitial polymer junctions between the Ag nanoparticle aggregates along with the appropriate nanoscale (<100 nm) surface roughness. Such nanomorphology allows the formation of well-defined and large numbers of hot spots where the localization of electromagnetic energy can result in very large enhancement of the Raman signal. We applied a simple plasma etching process to remove the polymer structures that allowed the formation of Ag structures with very uniform and controllable inter-particle gaps that were proved to provide significant SERS enhancement of typical biological systems such as double-stranded deoxyribonucleic acid (dsDNA). These advanced nanocomposite films could be used for the development of large-scale spectroscopy-based sensors for direct detection and analysis of various biological and chemical samples.
机译:对于敏感而坚固的表面增强拉曼散射(SERS)衬底,一种重要的设计方法是使用金属纳米粒子聚集体,其表面之间具有纳米定制的间隙距离,以限制电磁能。聚集体由于强大的范德华力而产生的团聚体的纳米结构不稳定性,对制备大规模,可靠的SERS底物构成了挑战。我们提出了一种使用聚合物-金属分形纳米复合材料制备稳定和高活性SERS底物的新途径。该方法基于分形纳米复合结构的独特形态,该结构仅在渗滤阈值以下,该阈值由Ag纳米颗粒聚集体之间的极窄(〜0.8 nm)间隙聚合物结以及适当的纳米级(<100 nm)表面粗糙度组成。这样的纳米形态允许形成明确的和大量的热点,其中电磁能量的定位可以导致拉曼信号的极大增强。我们应用了一种简单的等离子体蚀刻工艺来去除聚合物结构,该结构允许形成具有非常均匀且可控的颗粒间间隙的Ag结构,事实证明该结构可显着增强典型生物系统(例如双链脱氧核糖核酸(dsDNA))的SERS增强。这些先进的纳米复合膜可用于开发基于光谱的大型传感器,以直接检测和分析各种生物和化学样品。

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