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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Bending resistive improved effective mode area fluorine doped quadrilateral shaped core photonic crystal fiber for high power fiber lasers
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Bending resistive improved effective mode area fluorine doped quadrilateral shaped core photonic crystal fiber for high power fiber lasers

机译:弯曲电阻改进的高效模式面积氟掺杂四边形芯光子晶体光子晶纤维,用于高功率纤维激光器

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摘要

In this paper we propose a new design of a low loss large mode area (LMA) quadrilateral core photonic crystal fiber (QC-PCF). Removal of air holes from the rings adjacent to core and insertion of lower index rod near core region enables the fiber to enhance effective mode area even in bent condition. Finite element method (FEM) based software is used to simulate and analyze the guiding properties. According to simulation effective mode area of 1798 mu m(2) is achieved at an operating wavelength of 1.064 mu m when no lower index rod is used. At the same time, the fiber provides ultra-low confinement loss of 9.38 x 10(-13) dB/m. The area of our PCF reduces to 989 mu m(2) when it is bent at a radius of 30 cm with low bending loss of order 1.95 x 10(-5) dB/m. On the other hand, the shrinkage of mode area due to bending is reduced from 45% to 36% by employing low index fluorine doped rods around the core. Moreover, both confinement loss and bending loss reduce significantly to 3.05 x 10(-16) dB/m and 1 x 10(-6) dB/m respectively. However, our proposed quadrilateral shaped core PCF can be a consistent competitor in realm of high power lasers. (C) 2018 Elsevier GmbH. All rights reserved.
机译:在本文中,我们提出了一种新设计的低损耗大型区域(LMA)四边形核心光子晶体光纤(QC-PCF)。从核心区域附近的芯和下折射率插入的环中移除空气孔使得光纤即使在弯曲状态下也能够增强有效模式区域。基于有限元方法(FEM)的软件用于模拟和分析引导性能。根据模拟有效模式面积为1798μm(2),当使用下折射率杆时,在1.064μm的工作波长下实现。同时,纤维提供超低限速损失9.38×10(-13)dB / m。当它以30厘米的半径弯曲时,我们的PCF的区域减少到989 mu m(2),低弯曲损失1.95×10(-5)db / m。另一方面,通过在芯周围采用低指数氟掺杂棒,弯曲导致的模式面积的收缩从45%降至36%。此外,隔音损失和弯曲损耗分别显着减少至3.05×10( - 16)dB / m和1×10(-6)dB / m。然而,我们提出的四边形核心PCF可以是高功率激光器领域的一致竞争对手。 (c)2018年Elsevier GmbH。版权所有。

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