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Complete photonic band gaps and tunable self-collimation in the two-dimensional plasma photonic crystals with a new structure

机译:具有新结构的二维等离子体光子晶体中的完整光子带隙和可调谐的自准直

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In this paper, the properties of complete photonic band gaps (CPBGs) and tunable self-collimation in two-dimensional plasma photonic crystals (2D PPCs) with a new structure in square lattices, whose dielectric fillers (GaAs) are inserted into homogeneous and nomagnetized plasma background are theoretically investigated by a modified plane wave expansion (PWE) method with a novel technique. The novel PWE method can be utilized to compute the dispersion curves of 2D PPCs with arbitrary-shaped cross section in any lattices. As a comparison, CPBGs of PPCs for four different configurations are numerically calculated. The computed results show that the proposed design has the advantages of achieving the larger CPBGs compared to the other three configurations. The influences of geometric parameters of filled unit cell and plasma frequency on the properties of CPBGs are studied in detail. The calculated results demonstrate that CPBGs of the proposed 2D PPCs can be easily engineered by changing those parameters, and the larger CPBGs also can be obtained by optimization. The self-collimation in such 2D PPCs also is discussed in theory under TM wave. The theoretical simulations reveal that the self-collimation phenomena can be found in the TM bands, and both the frequency range of self-collimation and the equifrequency surface contours can be tuned by the parameters as mentioned above. It means that the frequency range and direction of electromagnetic wave can be manipulated by designing, as it propagates in the proposed PPCs without diffraction. Those results can hold promise for designing the tunable applications based on the proposed PPCs. (C) 2015 AIP Publishing LLC.
机译:本文研究了具有正方形结构新结构的二维等离子光子晶体(2D PPC)中的完整光子带隙(CPBG)和可调谐自准直的特性,将其介电填料(GaAs)插入均质且未磁化理论上通过一种新颖的改进的平面波扩展(PWE)方法研究了等离子体背景。新颖的PWE方法可用于计算具有任意形状横截面的2D PPC在任何晶格中的色散曲线。作为比较,对四种不同配置的PPC的CPBG进行了数值计算。计算结果表明,与其他三种配置相比,提出的设计具有实现更大CPBG的优势。详细研究了填充晶胞的几何参数和等离子体频率对CPBGs性能的影响。计算结果表明,通过更改这些参数,可以轻松地设计所建议的2D PPC的CPBG,并且还可以通过优化获得较大的CPBG。在理论上也讨论了这种二维PPC中的自准直。理论仿真表明,自准直现象可以在TM频带中找到,并且可以通过上述参数调整自准直的频率范围和等频率表面轮廓。这意味着可以通过设计来控制电磁波的频率范围和方向,因为它在建议的PPC中传播而没有衍射。这些结果可以为基于提议的PPC设计可调应用程序提供希望。 (C)2015 AIP Publishing LLC。

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