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Enhancement of buffer capability in slow light photonic crystal waveguides with extended lattice constants

机译:具有扩展晶格常数的慢光光子晶体波导中缓冲能力的增强

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摘要

Through shifting the rows adjacent to the line-defect along the waveguide direction, slow light photonic crystal slab waveguides with electro-optic polymer filled holes that show average group indices of 123 and 61.5 are obtained by three-dimensional plane-wave expansion method calculations. It is shown that the slow light properties and the buffering performance are enhanced by using an efficient method based on retreating the anti-crossing point with enlarging the lattice constant. This method has been shown to improve not only the bandwidth and flatten dispersion but also to reduce the variations in slow light properties that could occur due to fabrication inaccuracies. The performance of electro-optic modulation is drastically enhanced by exploiting local field enhancement induced by slow light effect. The buffering performance of the photonic crystal based buffer configurations are investigated and compared in terms of application needs. Since the modulation sensitivities of center wavelength and delay time change linearly with the applied voltage while remaining the buffer capacity and bit length almost constant, the investigated photonic crystal structures show promise for flexible and convenient buffering application in optical communication systems.
机译:通过沿着波导方向移动与线缺陷相邻的行,通过三维平面波扩展方法计算,获得了电光聚合物填充孔的慢光光子晶体平板波导,其平均群指数为123和61.5。结果表明,通过使用基于增加抗反射点同时增大晶格常数的有效方法,可以提高慢光性能和缓冲性能。该方法不仅可以改善带宽和平坦度,而且还可以减少由于制造不准确而导致的慢光特性的变化。通过利用慢光效应引起的局部场增强,可以极大地增强电光调制的性能。研究了基于光子晶体的缓冲配置的缓冲性能,并根据应用需求进行了比较。由于中心波长和延迟时间的调制灵敏度随施加的电压线性变化,同时保持缓冲容量和位长几乎恒定,因此研究的光子晶体结构显示出有望在光通信系统中灵活方便地进行缓冲应用。

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