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Perspectives on the application of InP-based photonic crystal waveguides for optical signal processing

机译:基于INP的光子晶体波导在光信号处理中的应用的透视图

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Photonic crystal waveguides have long attracted much attention in the integrated photonics community due to their high confinement properties and potential for the achievement of photonic circuits with a very high level of integration. While high propagation losses still impair most of the practical applications of such waveguides, predicted and demonstrated slow and dispersive propagation within compact lengths remain very attractive for optical signal processing. In this talk, results will be presented from an investigation on slow and dispersive propagation in two different types of InP-based photonic crystal waveguides fabricated at UCSB. Waveguides of the membrane type, with very strong vertical confinement, were fabricated and characterized, as well as guides with weak vertical confinement and deeply-etched holes. Those of the latter kind were successfully integrated with structures found in standard photonic circuits produced in our group. Detailed measurements of transmission will be presented showing slow and dispersive propagation close to band edges. Reasonable group delay enhancement is found, which is clearly dependent on propagation losses; on the other hand, extremely large GVD is found over reasonably wide bandwidths, even when considerable losses are present. This suggests that, by proper tuning of coupling coefficients, very compact dispersion-compensating elements can be designed. A discussion on the advantages and disadvantages, as well as different possibilities of using this class of waveguides for the implementation of delay lines and dispersion compensation will be presented.
机译:由于它们的高限制性能和具有非常高的集成水平的光子电路的潜力,光子晶体波导在集成的光子群体中长度吸引了许多关注。虽然高繁殖损耗仍然损害这种波导的大部分实际应用,但是在紧凑长度内预测和证明的缓慢而分散传播对光学信号处理非常有吸引力。在该谈话中,将从在UCSB制造的两种不同类型的基于INP的光子晶体波导中的缓慢和分散传播的研究中提出了结果。膜型的波导具有非常强大的垂直限制,并制造和表征,以及具有弱垂直限制和深度蚀刻孔的导向器。后者的那种成功地与我们组中生产的标准光子电路中发现的结构集成。将呈现传输的详细测量,显示靠近带边的缓慢和分散传播。找到合理的组延迟增强,这显然依赖于传播损失;另一方面,即使存在相当大的损失,也会发现极大的GVD在合理宽的带宽上。这表明,通过适当调整耦合系数,可以设计非常紧凑的色散补偿元件。展示了关于优点和缺点的讨论,以及使用这类波导来实现延迟线和色散补偿的不同可能性。

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