论文标题

杂化介电 - 质量纳米annoantenna,具有亚波长光源的多散性

Hybrid Dielectric-Plasmonic Nanoantenna with Multiresonances for Subwavelength Photon Sources

论文作者

Dmitriev, Pavel A., Lassalle, Emmanuel, Ding, Lu, Pan, Zhenying, Neo, Darren C. J., Valuckas, Vytautas, Paniagua-Dominguez, Ramón, Yang, Joel K. W., Demir, Hilmi Volkan, Kuznetsov, Arseniy I.

论文摘要

已经大量研究了由光学纳米反滕纳诱导的量子点的光致发光的增强,但仍然对优化和微型化,尤其是在伴随实验性演示的情况下,仍然存在很大的兴趣。大多数实现都使用等离子体平台,有些也使用全dilectric nanoantennas,但是混合介电 - 质量质量(亚波长)纳米结构很少探索。在本文中,我们提出并展示了与局部量子点发射器耦合到构成光学泵送下构成有效且明亮的单向光子源的单个亚波长介电质量质量纳米纳米。为了实现这一目标,我们设计了一个硅nanoring,坐在金镜上,中间有10 nm的间隙,其中嵌入了胶体量子点的组件。这种结构支持(辐射)天线模式和(非辐射)间隙模式共振,我们为双重偶联的双偶联量子点发出的光与平面外的方向性相耦合,并通过光泵通过光泵增强点的激发。此外,通过简单调整几何参数,例如环内直径和外径,几乎可以独立地控制共振光谱位置,从而使我们可以方便地相对于量子点发射和吸收波长来方便地调整这些共振。使用所提出的体系结构,我们获得了高达$ 654 \ times $折叠的实验平均荧光增强因子,这主要是由于较高的辐射效率,并且与样品平面方向的圆锥发光的方向发射到$ \ pm 17 \度的圆锥体的方向发射有关。我们认为,这里提出的解决方案与下一代发光设备相关。

The enhancement of the photoluminescence of quantum dots induced by an optical nanoantenna has been studied considerably, but there is still significant interest in optimizing and miniaturizing such structures, especially when accompanied by an experimental demonstration. Most of the realizations use plasmonic platforms, and some also use all-dielectric nanoantennas, but hybrid dielectric-plasmonic (subwavelength) nanostructures have been very little explored. In this paper, we propose and demonstrate single subwavelength hybrid dielectric-plasmonic optical nanoantennas coupled to localized quantum dot emitters that constitute efficient and bright unidirectional photon sources under optical pumping. To achieve this, we devised a silicon nanoring sitting on a gold mirror with a 10 nm gap in-between, where an assembly of colloidal quantum dots is embedded. Such a structure supports both (radiative) antenna mode and (nonradiative) gap mode resonances, which we exploit for the dual purpose of out-coupling the light emitted by the quantum dots into the far-field with out-of-plane directivity, and for enhancing the excitation of the dots by the optical pump. Moreover, almost independent control of the resonance spectral positions can be achieved by simple tuning of geometrical parameters such as the ring inner and outer diameters, allowing us to conveniently adjust these resonances with respect to the quantum dots emission and absorption wavelengths. Using the proposed architecture, we obtain experimentally average fluorescence enhancement factors up to $654\times$ folds mainly due to high radiative efficiencies, and associated with a directional emission of the photoluminescence into a cone of $\pm 17\degree$ in the direction normal to the sample plane. We believe the solution presented here to be viable and relevant for the next generation of light-emitting devices.

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