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Electrodynamic calculations of spontaneous emission coupled to metal nanostructures of arbitrary shape: nanoantenna-enhanced fluorescence

机译:自发发射耦合至任意形状的金属纳米结构的电动力学计算:纳米天线增强的荧光

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摘要

We present a theoretical study of the spontaneous emission of an optical emitter close to a metal nanostructure of arbitrary shape. The modification of the corresponding radiative and nonradiative decay rates and resulting quantum efficiencies, expressed on the basis of a semiclassical dipole model in terms of the local plasmonic mode density, is calculated by means of the rigorous formulation of the Green's theorem surface integral equations. Metal losses and the intrinsic nonradiative decay rate of the molecules are properly considered, presenting relationships valid in general for arbitrary intrinsic quantum yields. Resonant enhancement of the radiative and nonradiative decay rates of a fluorescent molecule is observed when coupled to an optical dimer nanoantenna. Upon varying the dipole position, it is possible to obtain a predominant enhancement of radiative decay rates over the nonradiative counterpart, resulting in an increase of the internal quantum efficiency. For emitters positioned in the gap, quantum efficiency enhancements from an intrinsic value of 1% to similar to 75% are possible.
机译:我们提出了一种光发射器自发发射的理论研究,该发射器靠近任意形状的金属纳米结构。根据格林定理表面积分方程的严格公式,计算了基于半经典偶极子模型以局部等离激元模式密度表示的相应辐射和非辐射衰变率的变化以及由此产生的量子效率。适当地考虑了分子的金属损耗和固有非辐射衰变速率,呈现出对于任意固有量子产率大体上有效的关系。当与光学二聚体纳米天线耦合时,观察到荧光分子的辐射衰减率和非辐射衰减率的共振增强。通过改变偶极子的位置,可以使辐射衰减率明显高于非辐射对应物,从而提高了内部量子效率。对于位于间隙中的发射器,量子效率可以从1%的内在值提高到接近75%。

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