Nanophotonic Cavity Modes from Subwavelength Polaritons of Polar Two-Dimensional Crystals

F. Feres, I. Barcelos, A. Cadore, Raul de Oliveira Freitas, Francisco Carlos Barbosa Maia
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Abstract

Cavity modes have fundamental importance in nanophotonics as in the two-dimensional (2D) crystals' optical response supporting subwavelength polaritons. Typically, high momenta polaritons in 2D crystals create cavity modes dependent on boundary conditions dictated by the material geometrical forms, substrate electrical permittivity and the optical probes used to interrogate the phenomenon. Here, we use a synchrotron infrared nanospectroscopy to probe polaritonic cavities in hexagonal boron nitride 2D crystals lying on metallic and dielectric substrates. From theoretical approach in quantitative agreement with experimental real-space imaging of polariton waves, we derive the dispersion relation and the reflection/transition coefficients governing the polaritonic cavities.
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极性二维晶体亚波长极化子的纳米光子腔模式
腔模在纳米光子学中具有重要的基础作用,在二维晶体的光学响应中支持亚波长极化子。通常,二维晶体中的高动量极化子产生的腔模式依赖于由材料几何形状、衬底电介电常数和用于询问该现象的光学探针所决定的边界条件。在这里,我们使用同步加速器红外纳米光谱来探测位于金属和介质衬底上的六方氮化硼二维晶体中的极化电子腔。根据理论方法,在定量上与实验的极化子波实空间成像一致,我们推导出了控制极化子腔的色散关系和反射/跃迁系数。
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