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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Enhancing Plasmonic-Photonic Hybrid Cavity Modes by Coupling of Individual Plasmonic Nanoparticles
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Enhancing Plasmonic-Photonic Hybrid Cavity Modes by Coupling of Individual Plasmonic Nanoparticles

机译:通过各种等离子体纳米粒子的耦合增强等离子体 - 光子混合腔模式

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We report the multibody coupling behavior of a vertical hybrid plasmonic-photonic cavity whose output mode can be selected by different lateral geometrical configurations of plasmonic nanostructures for a novel compact optical modulation strategy. The hybrid cavity has a Fabry-Perot-based configuration with a SiO2/Si dielectric interface at one end and plasmonic individual or coupled Au nanospheres (AuNSs) on the other end. The AuNS acts as an optical antenna that outcouples the standing wave inside the cavity to the far-field. The behavior of this hybrid antenna can be altered by the lateral near-field coupling of two AuNSs, allowing different output mode to be amplified. Upon assembly, the plasmonic peaks of the AuNSs are discretized by the photonic cavity, forming hybrid modes that are distinctively different from the original Fabry-Perot modes. A different primary mode can be selected according to the spectral envelope imposed by the plasmonic oscillation from respective AuNS nanostructures. Optical responses from monomer and dimer are recorded at single-particle resolution, and their interactions with a photonic cavity are analyzed using subnanometer grid finite difference time domain (FDTD) simulations to reveal the underlying multibody coupling mechanism. We also demonstrate the potential for the hybrid microcavities to incorporate gain media for potential applications in photonic circuits and near-field spectroscopy.
机译:我们报告了垂直混合等离子体 - 光子 - 光子腔的多体耦合行为,其输出模式可以通过不同的横向几何构造来选择代言纳米结构的不同横向几何配置,用于新型紧凑的光学调制策略。混合腔具有基于法的基于法布里 - 珀罗基配置,在一端具有SiO2 / Si电介质界面,另一端耦合Au纳米球(AUNS)。 AUNS用作光天线,将腔内驻留到远场的光学天线。该混合天线的行为可以通过两个AUNS的横向近场耦合来改变,允许放大不同的输出模式。在组装时,肛交的等离子体峰被光子腔离散化,形成与原始法布里 - 珀罗模式不同的混合模式。可以根据由等离子体纳米结构的等离子体振荡施加的光谱包络来选择不同的主要模式。从单体和二聚体的光学响应被记录在单颗粒分辨率下,并且使用亚腔电网电网有限差分时间域(FDTD)模拟来分析与光子腔的相互作用,以揭示底层的多体耦合机构。我们还展示了混合微张力的潜力,用于将增益介质纳入光子电路和近场光谱中的潜在应用。

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