Opt Express. 2023 Mar 13;31(6):10297-10319. doi: 10.1364/OE.477200.
Plasmonic resonances in metallic nanostructures can strongly enhance the emission from quantum emitters, as commonly used in surface-enhanced spectroscopy techniques. The extinction and scattering spectrum of these quantum emitter-metallic nanoantenna hybrid systems are often characterized by a sharp Fano resonance, which is usually expected to be symmetric when a plasmonic mode is resonant with an exciton of the quantum emitter. Here, motivated by recent experimental work showing an asymmetric Fano lineshape under resonant conditions, we study the Fano resonance found in a system composed of a single quantum emitter interacting resonantly with a single spherical silver nanoantenna or with a dimer nanoantenna composed of two gold spherical nanoparticles. To analyze in detail the origin of the resulting Fano asymmetry we develop numerical simulations, an analytical expression that relates the asymmetry of the Fano lineshape to the field enhancement and to the enhanced losses of the quantum emitter (Purcell effect), and a set of simple models. In this manner we identify the contributions to the asymmetry of different physical phenomena, such as retardation and the direct excitation and emission from the quantum emitter.
金属纳米结构中的等离子体共振可以强烈增强量子发射器的发射,这在表面增强光谱技术中经常使用。这些量子发射器-金属纳米天线混合系统的消光和散射光谱通常具有尖锐的 Fano 共振,当等离子体模式与量子发射器的激子共振时,通常预期是对称的。在这里,受最近实验工作的启发,该实验工作表明在共振条件下存在不对称的 Fano 线形状,我们研究了由单个量子发射器与单个球形银纳米天线或由两个金球形纳米粒子组成的二聚体纳米天线共振相互作用的系统中发现的 Fano 共振。为了详细分析产生的 Fano 不对称性的起源,我们开发了数值模拟、一种将 Fano 线形状的不对称性与场增强和量子发射器的增强损耗(Purcell 效应)相关联的解析表达式,以及一组简单的模型。通过这种方式,我们确定了不同物理现象(如延迟以及直接从量子发射器激发和发射)对不对称性的贡献。