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Dispersion control in plasmonic open nanocavities

机译:等离子体开放纳米腔中的分散控制

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We experimentally demonstrate the dependence of plasmonic resonant properties on cavity height in open circular cylinder nanocavities as a result of a strong three-dimensional confinement of the electromagnetic field, which shows a new way to tailor the dispersion of surface plasmon polaritons in cavities. The azimuthal and the axial symmetric plasmonic mode patterns are directly observed at resonant wavelengths using cathodoluminescence spectroscopy. Plasmonic modes and optical vertical cavity modes can be simultaneously excited and can coexist in a nanocavity with sufficient height. The highest quality factor, which is up to 73, is obtained in a 500 nm high cavity. The smallest mode volume is only 0.031 λSPP3, and the corresponding Purcell factor is 71. Open nanocavities provide space for the interaction between an optical emitter and a confined electromagnetic field. Many applications can be expected, such as plasmonic light-emitting devices and nanolasers.
机译:我们通过实验证明了由于电磁场的强三维约束,等离子共振特性对开放圆柱纳米腔中腔体高度的依赖性,这显示了一种调整表面等离振子极化子在腔体中的弥散的新方法。使用阴极发光光谱法可在共振波长处直接观察到方位角和轴向对称的等离激元模态。等离子体振子模式和光学垂直腔模式可以同时被激发并且可以在具有足够高度的纳米腔中共存。在500 nm高腔中可获得最高73的品质因数。最小的模式体积仅为0.031λSPP3,相应的珀塞尔系数为71。开放的纳米腔为光发射器与有限的电磁场之间的相互作用提供了空间。可以预期许多应用,例如等离子发光设备和纳米激光。

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