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Tuning of Spectral and Angular Distribution of Scattering from Single Gold Nanoparticles by Subwavelength Interference Layers

机译:亚波长干涉层对单个金纳米粒子散射光谱和角分布的调谐

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摘要

Localized surface plasmon resonance (LSPR) as the resonant oscillation of conduction electrons in metal nanostructures upon light irradiation is widely used for sensing as well as nanoscale manipulation. The spectral resonance band position can be controlled mainly by nanoparticle composition, size, and geometry and is slightly influenced by the local refractive index of the near-field environment. Here we introduce another approach for tuning, based on interference modulation of the light scattered by the nanostructure. Thereby, the incoming electric field is wavelength-dependent modulated in strength and direction by interference due to a subwavelength spacer layer between nanoparticle and a gold film. Hence, the wavelength of the scattering maximum is tuned with respect to the original nanoparticle LSPR. The scattering wavelength can be adjusted by a metallic mirror layer located 100?200 nm away from the nanoparticle, in contrast to nearfield gap mode techniques that work at distances up to 50 nm in the nanoparticle environment. Thereby we demonstrate, for the first time at the single nanoparticle level, that dependent on the interference spacer layer thickness, different distributions of the scattered signal can be observed, such as bell-shaped or doughnut-shaped point spread functions (PSF). The tuning effect by interference is furthermore applied to anisotropic particles (dimers), which exhibit more than one resonance peak, and to particles which are moved from air into the polymeric spacer layer to study the influence of the distance to the gold film in combination with a change of the surrounding refractive index.
机译:局部表面等离振子共振(LSPR)作为金属纳米结构在光辐照时传导电子的共振振荡,被广泛用于传感和纳米级操纵。光谱共振带的位置可以主要由纳米粒子的组成,大小和几何形状控制,并且受近场环境的局部折射率的影响很小。在这里,我们介绍了另一种基于纳米结构散射光的干涉调制进行调谐的方法。因此,由于纳米粒子和金膜之间的亚波长间隔层所引起的干扰,入射电场在强度和方向上是波长依赖的调制。因此,相对于原始纳米粒子LSPR,最大散射波长被调谐。与在纳米粒子环境中以高达50 nm的距离工作的近场间隙模式技术相反,可以通过距离纳米粒子100-200 nm的金属镜层来调节散射波长。因此,我们首次在单个纳米粒子水平上证明了取决于干涉间隔层的厚度,可以观察到散射信号的不同分布,例如钟形或甜甜圈形的点扩散函数(PSF)。此外,通过干扰的调谐效果还应用于显示出一个以上共振峰的各向异性颗粒(二聚体),以及从空气中进入聚合物间隔层的颗粒,以研究与金膜的距离的影响。周围折射率的变化。

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