Florous Nikolaos, Saitoh Kunimasa, Koshiba Masanori
Opt Express. 2006 Jan 23;14(2):901-13. doi: 10.1364/opex.14.000901.
The present paper describes a novel systematic solution to the challenging task of realizing photonic crystal fibers (PCFs) with flat chromatic dispersion, low leakage losses, and large mode area, mainly for applications as information carriers in wide-band high speed optical transmission systems. The proposed design strategy is based on the existence of an artificially-defected air-hole ring in the cladding and on the modulation of the refractive index of the core by assembling additional defected air-holes in the central core region of the fiber. The validation of the proposed design is carried out by adopting an efficient full-vectorial finite element method with perfectly matched layers for accurate characterization of PCFs. The remarkable flat chromatic dispersion as well as the large mode area and the low leakage losses are the main advantages of the proposed PCF structure, making it an ideal candidate for performing wavelength division multiplexing operation in reconfigurable optical transmission systems or as an information delivering platform in high speed optical communication systems. Typical characteristics of the newly proposed PCF are: flattened chromatic dispersion of 6.3+/-0.5 ps/km/nm in the S+C+L telecommunication band, and effective mode area as large as 100 microm(2) in the same wavelength range. We additionally provide numerical data about the performance of the proposed PCF in splicing mode as well as during macrobending operation and we give qualitative information regarding the sensitivity of the proposed transmission platform to structural disorders of the design parameters.
本文描述了一种新颖的系统解决方案,用于解决实现具有平坦色散、低泄漏损耗和大模场面积的光子晶体光纤(PCF)这一具有挑战性的任务,主要用于宽带高速光传输系统中作为信息载体的应用。所提出的设计策略基于包层中存在人工缺陷的气孔环,以及通过在光纤的中心纤芯区域组装额外的缺陷气孔来调制纤芯的折射率。通过采用带有完全匹配层的高效全矢量有限元方法对光子晶体光纤进行精确表征,来验证所提出的设计。所提出的光子晶体光纤结构的主要优点是具有显著的平坦色散、大模场面积和低泄漏损耗,这使其成为在可重构光传输系统中执行波分复用操作或作为高速光通信系统中的信息传递平台的理想候选者。新提出的光子晶体光纤的典型特性为:在S + C + L电信波段中,色散平坦度为6.3±0.5 ps/km/nm,在相同波长范围内有效模场面积高达100 微米²。我们还提供了关于所提出的光子晶体光纤在熔接模式以及宏弯曲操作期间性能的数值数据,并给出了关于所提出的传输平台对设计参数结构紊乱的敏感性的定性信息。