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Analysis of tunable bandgaps in liquid crystal-infiltrated 2D silicon photonic crystals

机译:液晶渗透二维硅光子晶体中的可调谐带隙分析

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摘要

We present a theoretical study on two-dimensional photonic crystals composed of silicon and the E7 liquid crystal. We analyze how the optical axis orientation of the liquid crystal influences the photonic bands and bandgaps, for the case when the Maxwell equations can be decoupled into the TE and TM modes. We consider two different structures, a triangular lattice of E7 liquid crystal cylinders in a silicon background and a triangular lattice of silicon cylinders in an E7 liquid crystal background. The effect of the liquid crystal anisotropy on the geometry of the irreducible Brillouin zone allows us to propose a simplified way to calculate the photonic bandgaps. Results show that the bandgap width and center frequency have a 60° periodicity for both structures. Using the plane-wave expansion method, we determined the maximum bandgap and the optimal radius of the cylinders for each structure. Finally, for the second structure, we propose an optical switch with a 50% duty cycle. These structures can be applied to design tunable photonic devices.
机译:我们对由硅和E7液晶组成的二维光子晶体进行理论研究。在麦克斯韦方程可以解耦为TE和TM模式的情况下,我们分析了液晶的光轴方向如何影响光子带和带隙。我们考虑两种不同的结构,硅背景下的E7液晶圆柱体的三角形晶格和E7液晶背景下的硅圆柱体的三角形晶格。液晶各向异性对不可还原布里渊区的几何形状的影响使我们能够提出一种简化的方法来计算光子带隙。结果表明,两种结构的带隙宽度和中心频率都具有60°的周期性。使用平面波扩展方法,我们确定了每种结构的最大带隙和圆柱的最佳半径。最后,对于第二种结构,我们提出一种占空比为50%的光开关。这些结构可以应用于设计可调光子器件。

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  • 来源
    《Applied physics》 |2010年第4期|P.833-839|共7页
  • 作者单位

    Nanoelectronic and Photonic Systems, Department of Electronic,Electric and Automatic Control Engineering, Universitat Rovirai Virgili, Avda. Paiesos Catalans 26, 43007 Tarragona, Spain;

    rnNanoelectronic and Photonic Systems, Department of Electronic,Electric and Automatic Control Engineering, Universitat Rovirai Virgili, Avda. Paiesos Catalans 26, 43007 Tarragona, Spain;

    Nanoelectronic and Photonic Systems, Department of Electronic,Electric and Automatic Control Engineering, Universitat Rovirai Virgili, Avda. Paiesos Catalans 26, 43007 Tarragona, Spain;

    Nanoelectronic and Photonic Systems, Department of Electronic,Electric and Automatic Control Engineering, Universitat Rovirai Virgili, Avda. Paiesos Catalans 26, 43007 Tarragona, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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