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Band Gap Optimization Design of Photonic Crystals Material

机译:光子晶体材料的带隙优化设计

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The photonic crystal has a fundamental characteristic - photonic band gap, which can prevent light to spread in the crystals. This paper studies the width variation of band gaps of two-dimension square lattice photonic crystals by changing the geometrical shape of the unit cells' inner medium column. Using the finite element method, we conduct numerical experiments on MATLAB 2012a and COMSOL 3.5. By shortening the radius in vertical axis and rotating the medium column, we design a new unit cell, with a 0.3~*3.85e-7 vertical radius and a 15 degree deviation to the horizontal axis. The new cell has a gap 1.51 percent wider than the circle medium structure in TE gap and creates a 0.0124 wide 1M gap. Besides, the experiment shows the first TM gap is partially overlapped by the second TE gap in gap pictures. This is helpful to format the absolute photonic band gaps and provides favorable theoretical basis for designing photonic communication material.
机译:光子晶体具有基本的特征 - 光子带隙,这可以防止光在晶体中涂布。本文通过改变单元电池内塔的几何形状,研究了二维方形晶格光子晶体的带间隙的宽度变化。使用有限元方法,我们对Matlab 2012A和COMSOL 3.5进行数值实验。通过沿垂直轴线缩短半径并旋转中柱,我们设计一个新的单元电池,具有0.3〜3.85e-7垂直半径和15度偏差到水平轴。新电池的间隙比TE间隙中的圆形介质结构宽1.51%,并产生0.0124宽的1M间隙。此外,实验表明,第一TM间隙被间隙图像中的第二TE间隙部分重叠。这有助于格式化绝对光子带隙,并为设计光子通信材料提供有利的理论依据。

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