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Theoretical and experimental comprehensive study of GHz-range passively mode-locked fiber lasers

机译:GHz范围被动模式锁定光纤激光器的理论与实验综合研究

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In this paper, we present a theoretical model based on the nonlinear Schrodinger equation to characterize GHz-range passively mode-locked fiber lasers. The modeled cavities of the lasers are configured by a highly doped and polarization-maintaining single fiber of a single type. For different pulse repetition rates, ranging from 1.0 to 10.0 GHz, gain parameters and pump threshold for a stable mode-locked laser emission are studied. Pulse time width, spectral width, and semiconductor saturable absorber mirror (SESAM) properties are defined to achieve stable emission. To experimentally validate our theoretical model, 1.0 and 2.2 GHz laser cavities have been built up and amplified. A stable and robust operation for both frequencies was obtained, and the experimental measurements have been found to match the theoretical predictions. Finally, enhanced environmental stability has been achieved using a cavity temperature control system and an antivibration enclosure. (C) 2020 Optical Society of America
机译:在本文中,我们介绍了基于非线性Schrodinger方程的理论模型,以表征GHz范围被动模式锁定光纤激光器。激光器的模型空腔由一种单一类型的高度掺杂和偏振的单纤维构成。对于不同的脉冲重复速率,研究了从1.0到10.0 GHz,增益参数和泵阈值的稳定模式锁定激光发射。定义脉冲时间宽度,光谱宽度和半导体饱和吸收镜(SESAM)特性以实现稳定的发射。为了通过实验验证我们的理论模型,已经建立并放大了1.0和2.2GHz激光腔。获得两个频率的稳定和稳健的操作,并发现实验测量与理论预测相匹配。最后,使用腔温度控制系统和防振外壳已经实现了增强的环境稳定性。 (c)2020美国光学学会

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