Saitoh Kunimasa, Florous Nikolaos, Koshiba Masanori
Opt Express. 2005 Oct 17;13(21):8365-71. doi: 10.1364/opex.13.008365.
The present paper describes a novel systematic solution to the problem of controlling the chromatic dispersion and dispersion slope in photonic crystal fibers (PCFs), using a structurally-simple PCF with a defected-core. By adjusting the size of the central air-hole defect we can successfully design an ultra-flattened PCF with low confinement losses, as well as small effective mode area. The design strategy is based on the mutual cancellation between the waveguide and the material dispersions of the PCF, by varying the size of the central defected region in the core. The verification of the ultra-flattened chromatic dispersion property of the proposed PCF is ensured with an accurate full-vector finite element method with anisotropic perfectly matched layers. The ultra-flattened dispersion feature, as well as the low confinement losses and the small effective mode area are the main advantages of the proposed PCF structure, making it suitable as a chromatic dispersion controller dispersion compensator, or as candidate for nonlinear optical applications.
本文描述了一种新颖的系统解决方案,用于解决光子晶体光纤(PCF)中控制色散和色散斜率的问题,该方案采用具有缺陷纤芯的结构简单的PCF。通过调整中心气孔缺陷的尺寸,我们能够成功设计出具有低限制损耗以及小有效模面积的超平坦PCF。该设计策略基于通过改变纤芯中中心缺陷区域的尺寸,使PCF的波导色散与材料色散相互抵消。利用具有各向异性完全匹配层的精确全矢量有限元方法,确保了所提出的PCF具有超平坦色散特性。超平坦色散特性、低限制损耗以及小有效模面积是所提出的PCF结构的主要优点,使其适合用作色散控制器、色散补偿器或非线性光学应用的候选材料。