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Electrotunable band gaps of one- and two-dimensional photonic crystal structures based on silicon and liquid crystals

机译:基于硅和液晶的一维和二维光子晶体结构的电可调带隙

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One- and two-dimensional photonic crystals based on silicon with infiltrated liquid crystals are investigated in this paper. We show that the photonic band gap can be continuously tuned changing the orientation of the director of the liquid crystal. For the one-dimensional case, we considered arbitrary direction of propagation of the electromagnetic waves, and we show that it is possible to tune the photonic band gap by an adequate orientation of the liquid crystal. For the two-dimensional case and propagation in the plane of periodicity, we show that there exists no complete photonic band gap in the system for both polarizations. We consider two different configurations, square array of solid Si cylinders in liquid crystal background and a triangular array of liquid crystal cylinders surrounded by Si. We show that for the triangular array it is possible to tune the photonic band gap only for the transversal electric modes. We used the plane wave expansion method to solve the Maxwell equations for anisotropic systems.
机译:本文研究了基于硅和渗透液晶的一维和二维光子晶体。我们表明,光子带隙可以连续改变液晶指向矢的方向。对于一维情况,我们考虑了电磁波的任意传播方向,并且表明可以通过适当的液晶取向来调整光子带隙。对于二维情况和在周期性平面内的传播,我们表明对于两种偏振,系统中都不存在完整的光子带隙。我们考虑两种不同的配置,液晶背景下的固态Si圆柱体的正方形阵列和被Si包围的液晶圆柱体的三角形阵列。我们表明,对于三角形阵列,仅针对横向电模式可以调谐光子带隙。我们使用平面波展开法来求解各向异性系统的麦克斯韦方程。

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