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金纳米烧杯阵列中的多重等离子体-光子耦合:增强的稳健性和波长可调性。

Multiple plasmonic-photonic couplings in the Au nanobeaker arrays: enhanced robustness and wavelength tunability.

作者信息

Lin Linhan, Zheng Yuebing

出版信息

Opt Lett. 2015 May 1;40(9):2060-3. doi: 10.1364/OL.40.002060.

DOI:10.1364/OL.40.002060
PMID:25927784
Abstract

Diffractive coupling in the plasmonic nanoparticle arrays introduces the collective plasmon resonances with high scattering efficiency and narrow linewidth. However, the collective plasmon resonances can be suppressed when the arrays are supported on the solid-state substrates with different superstrates because of the different dispersion relations between the substrate and the superstrate. Herein, we develop a general concept which seeks to synergize the subnanoparticle engineering of "hot spots" with the far-field coupling behavior, for the versatile control of plasmonic-photonic couplings in an asymmetric environment. To demonstrate our concept, we choose as an example the Au nanobeaker arrays (NBAs), which are the conformally coated Au thin layers on the interior sidewalls and bottoms of nanohole arrays in SiO substrates. Using the finite-difference time-domain simulations, we show that engineering the plasmonic "hot spots" in the NBAs by simply controlling the depth-to-diameter aspect ratio of individual units enables multiple plasmonic-photonic couplings in an asymmetric environment. These couplings are robust with a wide range of resonance wavelengths from visible to infrared. Furthermore, the angle-dependent transmission spectra of the arrays reveal a transition from band-edge to propagating state for the orthogonal coupling and a splitting of diffraction waves in the parallel coupling. The proposed NBAs will find enhanced applications in plasmonic lasers and biosensing.

摘要

等离子体纳米颗粒阵列中的衍射耦合引入了具有高散射效率和窄线宽的集体等离子体共振。然而,当阵列支撑在具有不同上层结构的固态衬底上时,由于衬底和上层结构之间不同的色散关系,集体等离子体共振可能会受到抑制。在此,我们提出了一个通用概念,旨在将“热点”的亚纳米颗粒工程与远场耦合行为相结合,以在非对称环境中对等离子体 - 光子耦合进行多功能控制。为了证明我们的概念,我们以金纳米烧杯阵列(NBA)为例,它是在SiO衬底中纳米孔阵列的内侧壁和底部上共形涂覆的金薄层。通过时域有限差分模拟,我们表明通过简单地控制单个单元的深度与直径的纵横比来设计NBA中的等离子体“热点”,可以在非对称环境中实现多种等离子体 - 光子耦合。这些耦合在从可见光到红外光的广泛共振波长范围内都很稳健。此外,阵列的角度相关透射光谱揭示了正交耦合中从带边到传播状态的转变以及平行耦合中衍射波的分裂。所提出的NBA将在等离子体激光器和生物传感方面有更多的应用。

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