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Enhancement Mechanism of Fluorescence Intensity in Presence of Plasmonic Nanoparticles

机译:等离子体纳米粒子存在下荧光强度增强机制

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The emission intensity of fluorophore molecule may change in presence of strong plasmon field induced by nanoparticles. The enhancement intensity is optimized through selective clustering or functionalization of nanoparticles in closed vicinity of fluorophore. Our study is aimed at understanding the enhancement mechanism of fluorescence intensity in presence of gold nanoparticles to utilize it in molecular sensing and in situ imaging in the microfluidic lab-on-chip device. Related phenomena are studied in situ in a microfluidic channel via fluorescence imaging. Detailed analysis is carried out to understand the possible mechanism of enhancement of fluorescence due to nanoparticles. In the present experimental study we show that SYTO9 fluorescence intensity increased in presence of Au nanoparticles of ~20 nm diameter. The fluorescence intensity is 20 time more compared to that in absence of Au nanoparticles. The enhancement of fluorescence intensity is attributed to the plasmonic resonance of Au nanoparticle at around the fluorescence emission wavelength. Underlying fundamental mechanism via dipole interaction model is explored for quantitative correlation of plasmonic enhancement properties.
机译:荧光团分子的发射强度可能在纳米粒子诱导的强等离激元场的存在下发生变化。通过在荧光团的封闭附近对纳米颗粒进行选择性聚类或功能化来优化增强强度。我们的研究旨在了解金纳米颗粒存在下荧光强度的增强机制,以将其用于微流体芯片实验室设备中的分子传感和原位成像。通过荧光成像在微流体通道中原位研究相关现象。进行了详细的分析,以了解由于纳米颗粒导致荧光增强的可能机理。在本实验研究中,我们表明SYTO9荧光强度在直径约20 nm的金纳米颗粒存在下增加。与不存在Au纳米粒子的情况相比,荧光强度是其20倍。荧光强度的增强归因于金纳米粒子在荧光发射波长附近的等离子体共振。探索了通过偶极子相互作用模型的基本机理,用于等离子体增强特性的定量相关。

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