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Asymmetric large-mode-area photonic crystal fiber structure with effective single-mode operation: design and analysis

机译:具有有效单模运行的非对称大面积区域光子晶体光纤结构:设计与分析

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The asymmetrical structure of photonic crystal fiber has been reported for a large mode area with the single-mode operation. The design works on the principle of bend-induced mode filtering. The proposed structure can be designed (i) by introducing down-doped material rods in place of nine air holes of the inner ring near the core of the structure and (ii) by increasing the diameter of the rest of the three air holes of the same ring in the direction of bending. These three air holes together with nine down-doped material rods control the mode field inside the core region and hence the bending losses of the modes. The single-mode operation is ensured by introducing high bend loss for the first higher order mode and very low bend loss for the fundamental mode. The finite-element-method-based anisotropic perfectly matched layer boundary condition has been applied for accurate analysis of bend loss of the structure. Numerical results show that effective single-mode operation can be ensured with a mode area as large as 1530 mu m(2) at bend state with a bend radius of 30 cm. The proposed photonic crystal optical fiber with such a large mode area can have potential applications in compact high-power delivery devices such as high-power fiber lasers and amplifiers. (C) 2016 Optical Society of America
机译:已经报道了通过单模操作在大模区域中光子晶体光纤的不对称结构。该设计基于弯曲感应模式滤波的原理。可以通过以下方式设计提出的结构:(i)通过引入向下掺杂的材料棒代替结构核心附近的内环的九个气孔,以及(ii)增大结构中三个气孔的其余部分的直径同一环在弯曲方向上。这三个气孔与九个向下掺杂的材料棒一起控制了芯区域内的模场,从而控制了模的弯曲损耗。通过为第一个高阶模式引入高的弯曲损耗和为基本模式引入非常低的弯曲损耗来确保单模工作。基于有限元方法的各向异性完美匹配层边界条件已被用于精确分析结构的弯曲损耗。数值结果表明,在弯曲半径为30 cm的弯曲状态下,模态面积最大为1530μm(2),可以确保有效的单模操作。所提出的具有如此大的模式面积的光子晶体光纤可以在紧凑的高功率传输设备(例如高功率光纤激光器和放大器)中具有潜在的应用。 (C)2016美国眼镜学会

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