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In-phase supermode selection in a multicore fiber laser array by means of a self-Fourier external cavity

机译:通过自傅里叶外腔在多芯光纤激光器阵列中进行同相超模选择

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摘要

A procedure is developed to determine the transverse-mode structure of a cavity consisting of a dense, evanescently coupled, waveguide laser array, which, in addition, is externally coupled by feedback from an external cavity. The formalism is used to determine the loss and phasing properties of a multicore fiber array coupled to an external self-Fourier cavity. Best performance is predicted for linear arrays of up to five cores, or two-dimensional arrays of up to 25 cores. A low-loss, in-phase, fundamental array mode is predicted, which achieves better than 30 dB discrimination against higher-order modes at periodically spaced values of the array length. However, we show that a shift in operating wavelength of typically a few nanometers can bring about near-perfect phasing and loss operation over a continuum of fiber lengths. With increased fill factor, significantly more of the output power can be concentrated in the central lobe of the far field but at the penalty of increased loss in the fundamental eigenmode.
机译:开发了一种程序来确定腔的横向模式结构,该腔由密集的,escent逝耦合的波导激光器阵列组成,此外,该激光器阵列还通过来自外部腔的反馈进行外部耦合。形式主义用于确定耦合到外部自傅里叶腔的多芯光纤阵列的损耗和相位特性。对于最多五个核的线性阵列或最多25个核的二维阵列,可以预测出最佳性能。可以预测出一种低损耗,同相的基本阵列模式,在阵列长度的周期性间隔值下,与高阶模式相比,它的分辨力要好于30 dB。但是,我们表明,通常在几纳米范围内工作的波长偏移会在连续的光纤长度上带来近乎完美的定相和损耗操作。随着填充因子的增加,显着更多的输出功率可以集中在远场的中央波瓣上,但是在基本本征模中损失增加。

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