首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Spoof surface plasmon polaritons excitation and wavefront control by Pancharatnam-Berry phase manipulating metasurface
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Spoof surface plasmon polaritons excitation and wavefront control by Pancharatnam-Berry phase manipulating metasurface

机译:PancharaTnam-Berry phoping Metasurface的欺骗表面等离子体Polaritons激励和波前控制

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Realizing fine control of surface plasmon polaritons (SPPs) and spoof surface plasmon polaritons (SSPPs) is highly desired in many integrated photonic and microwave applications, but the flexibility to control the wavefront of SPPs and SSPPs still need addressing. In this paper, a Pancharatnam-Berry (PB) phase manipulating metasurface (PMM) was designed to achieve SSPPs excitation and wavefront control. Under circular polarization (CP) incidence, simply by designing the rotation angle of the unit cells the reflection phase spatial distribution can be manipulated. By means of different phase profiles on the 2D unit cells array, the SSPPs can be excited with various wavefront shapes, without the need of special excitation structure pattern. Meanwhile, a plasmonic metal is also designed to support SSPPs with both TE and TM polarizations, which can efficiently guide out the energies from the input CP waves. As a proof of concept, a PB PMM composed of N-shape metallic structure was designed. Through designing the rotation of the unit cells, two typical phase profiles were designed to excite SSPPs in arbitrary slant direction or focusing. This scheme could be used to achieve SSPPs excitation with many other wavefront shapes, and would also enable promising applications in other spectra.
机译:在许多集成光子和微波应用中,非常需要对表面等离子体极性恒星(SPP)和欺骗表面等离子体(SSPP)进行微量控制,但是控制SPP和SSPP的波前仍需要寻址的灵活性。在本文中,设计了一种PancharAtnam-Berry(PB)操作元曲面(PMM),旨在实现SSPPS激励和波前控制。在圆偏振(CP)入射下,仅通过设计单元电池的旋转角度,可以操纵反射相空间分布。通过在2D单元电池阵列上的不同相位型材,SSPP可以用各种波前形状激发,而不需要特殊的激励结构图案。同时,等离子体金属也设计用于支持具有TE和TM偏振的SSPP,这可以有效地引导输入CP波的能量。作为概念证据,设计了由N形金属结构组成的PB PMM。通过设计单元电池的旋转,设计了两个典型的相形轮廓,以激发在任意倾斜方向或聚焦中激发SSPP。该方案可用于实现许多其他波前形状的SSPPS激励,并且还将在其他光谱中实现有前途的应用。

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