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具有小限制损耗的大负色散光子晶体光纤的理论分析

Theoretical analysis of large negative dispersion photonic crystal fiber with small confinement loss.

作者信息

Rahaman Md Ekhlasur, Hossain Md Mahbub, Shekhar Mondal Himadri, Saha Rekha, Saif Muntaseer Ahmed

出版信息

Appl Opt. 2020 Oct 1;59(28):8925-8931. doi: 10.1364/AO.397420.

DOI:10.1364/AO.397420
PMID:33104579
Abstract

Solid core circular and octagonal photonic crystal fibers (CPCF and OPCF) are proposed for analyzing different guiding properties such as dispersion, effective mode area, nonlinearity, and confinement loss from 0.8 to 2.6 µm wavelength. The proposed structures use three different types of background materials: SF10, BK7, and silica. Moreover, the fill fraction is varied by changing the diameter of the air hole where the lattice pitch is unchanged. The proposed PCFs show a high negative dispersion with low confinement loss and small effective mode area. In the proposed design, the finite element method with a perfectly matched layer absorbing boundary condition is used. At 1.8 µm wavelength with 0.6 fill fraction, the maximum negative dispersion of -922.5/(.) is observed for CPCF when the background material is SF10. In addition, at this particular wavelength, the confinement loss is observed to be very small. Moreover, -560.12/(.) dispersion is found for the similar condition at 1.55 µm wavelength. On the other hand, using BK7 as the background material, -706.77/(.) dispersion is found at 1.55 µm wavelength for CPCF. Results also imply that CPCF shows better performance than OPCF for a wide wavelength range. Furthermore, at 1.55 µm wavelength, silica-based glass exhibits maximum dispersion, whereas increasing wavelength flint type glass shows the similar result. Analyzing different guiding properties of PCFs has significant impact on broadband dispersion compensation applications, especially using SF10.

摘要

提出了实心芯圆形和八角形光子晶体光纤(CPCF和OPCF),用于分析0.8至2.6μm波长范围内的不同导波特性,如色散、有效模面积、非线性和限制损耗。所提出的结构使用三种不同类型的背景材料:SF10、BK7和二氧化硅。此外,通过在晶格间距不变的情况下改变气孔直径来改变填充率。所提出的光子晶体光纤表现出高负色散、低限制损耗和小有效模面积。在所提出的设计中,使用了具有完美匹配层吸收边界条件的有限元方法。当背景材料为SF10时,在1.8μm波长、填充率为0.6的情况下,CPCF观察到最大负色散为-922.5/(.)。此外,在该特定波长下,观察到限制损耗非常小。而且,在1.55μm波长的类似条件下,发现色散为-560.12/(.)。另一方面,使用BK7作为背景材料,在1.55μm波长下CPCF的色散为-

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