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Improved Hybrid FDTD Method for Studying Tunable Graphene Frequency-Selective Surfaces (GFSS) for THz-Wave Applications

机译:改进的混合FDTD方法,用于研究太赫兹波应用中的可调节石墨烯频率选择表面(GFSS)

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摘要

One hybrid finite-difference time-domain (FDTD) method is proposed for studying transmission characteristics of a THz wave through some tunable dispersive graphene frequency-selective surfaces (GFSSs) biased by an electrostatic or a magnetostatic field, respectively. It integrates auxiliary differential equation (ADE)-FDTD with high-order conformal FDTD (2, 4) so as to handle atomically thin periodic structures on an electrically anisotropic substrate with high flexibility and accuracy. The dispersion error and computational efficiency of the developed algorithm is validated in comparison with the piecewise linear recursive convolution (PLRC)-FDTD and commercial software HFSS, respectively. Numerical studies are further performed to demonstrate its capability for characterizing the effects of chemical potential of graphene, biasing electrostatic and magnetostatic fields, and geometrical parameters of different GFSSs on the central frequencies and 3-dB bandwidths of their passbands and stopbands. In particular, both frequency selectivity and tunability of GFSSs made of single- and double-layer periodic split-ring resonators are predicted, which can be exploited for developing some novel tunable THz structures.
机译:提出了一种混合时差有限差分法(FDTD),以研究太赫兹波通过静电或静磁场偏置的可调谐色散石墨烯频率选择表面(GFSS)的传输特性。它将辅助微分方程(ADE)-FDTD与高阶保形FDTD(2,4)集成在一起,以便以高灵活性和准确性处理电各向异性基板上的原子薄周期结构。分别与分段线性递归卷积(PLRC)-FDTD和商用软件HFSS进行比较,验证了所开发算法的色散误差和计算效率。进行了进一步的数值研究,以证明其表征石墨烯化学势,偏置静电场和静磁场以及不同GFSS的几何参数对通带和阻带的中心频率和3 dB带宽的影响的能力。特别地,预测了由单层和双层周期性开口环谐振器制成的GFSS的频率选择性和可调谐性,可将其用于开发一些新颖的可调谐太赫兹结构。

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