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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Microwave band gap and cavity mode in spoof-insulator-spoof waveguide with multiscale structured surface
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Microwave band gap and cavity mode in spoof-insulator-spoof waveguide with multiscale structured surface

机译:具有多尺度结构化表面的欺骗-绝缘体-欺骗波导中的微波带隙和腔模

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We propose a multiscale spoof-insulator-spoof (SIS) waveguide by introducing periodic geometry modulation in the wavelength scale to a SIS waveguide made of a perfect electric conductor. The MSIS consists of multiple SIS subcells. The dispersion relationship of the fundamental guided mode of the spoof surface plasmon polaritons (SSPPs) is studied analytically within the small gap approximation. It is shown that the multiscale SIS possesses microwave band gap (MBG) due to the Bragg scattering. The 'gap maps' in the design parameter space are provided. We demonstrate that the geometry of the subcells can efficiently adjust the effective refraction index of the elementary SIS and therefore further control the width and the position of the MBG. The results are in good agreement with numerical calculations by the finite element method (FEM). For finite-sized MSIS of given geometry in the millimeter scale, FEM calculations show that the first-order symmetric SSPP mode has zero transmission in the MBG within frequency range from 4.29 to 5.1 GHz. A cavity mode is observed inside the gap at 4.58 GHz, which comes from a designer 'point defect' in the multiscale SIS waveguide. Furthermore, ultrathin MSIS waveguides are shown to have both symmetric and antisymmetric modes with their own MBGs, respectively. The deep-subwavelength confinement and the great degree of control of the propagation of SSPPs in such structures promise potential applications in miniaturized microwave device.
机译:通过将波长尺度上的周期性几何调制引入由完美电导体制成的SIS波导中,我们提出了一种多尺度欺骗-绝缘-欺骗(SIS)波导。 MSIS由多个SIS子单元组成。在小间隙近似情况下,分析研究了欺骗表面等离激元极化子(SSPP)的基本导模的色散关系。结果表明,由于布拉格散射,多尺度SIS具有微波带隙(MBG)。在设计参数空间中提供了“间隙图”。我们证明,子单元的几何形状可以有效地调整基本SIS的有效折射率,因此可以进一步控制MBG的宽度和位置。结果与有限元方法(FEM)的数值计算非常吻合。对于毫米级内给定几何形状的有限大小的MSIS,FEM计算表明,一阶对称SSPP模式在4.29至5.1 GHz频率范围内的MBG中具有零传输。在4.58 GHz的间隙内观察到腔模,这是由多尺度SIS波导中的设计者“点缺陷”引起的。此外,超薄MSIS波导显示分别具有自己的MBG的对称模式和反对称模式。在这种结构中,深亚波长限制和SSPP传播的高度控制有望在微型微波设备中应用。

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