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Time- and position-dependent modeling of high-power low-repetition-rate Er-Yb-fiber amplifier

机译:大功率低重复频率Er-Yb光纤放大器的时间和位置相关建模

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摘要

There is rapid progress in the development of high-power fiber lasers due to their robust operation, low cost, high beam quality at high powers. There are various applications, such as laser sensing, LIDAR applications, processing of specific materials, which require robust and high-power pulsed laser sources at 1550 nm with high beam quality. Achievement of high peak power with low repetition rate is challenging due to well-known problems of strong nonlinear effects and amplified spontaneous emission (ASE) build-up between pulses. In order to reach highest efficiency, the design of each stage of amplification should be carefully optimized. Numerical modeling can be a great tool due to the large number of parameters involved [1]. To date, most modeling efforts of fiber amplification have assumed either a lumped gain model for pulse propagation or a distributed, position-dependent gain model for CW signal for computational simplicity. Here, we investigate both time- and position-dependent gain dynamics numerically, which are used to optimize experimental results.
机译:由于高功率光纤激光器的鲁棒性,低成本,高功率下的高光束质量,其发展迅速。有多种应用,例如激光感测,激光雷达应用,特殊材料的处理,这些技术要求在1550 nm波长下具有高光束质量的强大且高功率的脉冲激光源。由于众所周知的强非线性效应和脉冲之间的放大自发发射(ASE)积累问题,以低重复频率实现高峰值功率具有挑战性。为了达到最高效率,应仔细优化每个扩增阶段的设计。由于涉及大量参数,数值建模可能是一个很好的工具[1]。迄今为止,大多数光纤放大建模工作都采用了用于脉冲传播的集总增益模型或用于CW信号的分布式,位置相关的增益模型来简化计算。在这里,我们以数字方式研究时间和位置相关的增益动力学,这些动力学用于优化实验结果。

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