Korobko D A, Fotiadi A A, Zolotovskii I O
Opt Express. 2017 Sep 4;25(18):21180-21190. doi: 10.1364/OE.25.021180.
We have applied a simple approach to analyze behavior of the harmonically mode-locked fiber laser incorporating an adjustable Mach-Zehnder interferometer (MZI). Our model is able to describe key features of the laser outputs and explore limitations of physical mechanisms responsible for laser operation at different pulse repetition rates tuned over a whole GHz range. At low repetition rates the laser operates as a harmonically mode-locked soliton laser triggered by a fast saturable absorber. At high repetition rates the laser mode-locking occurs due to dissipative four-wave mixing seeded by MZI and gain spectrum filtering. However, the laser stability in this regime is rather low due to poor mode selectivity provided by MZI that is able to support the desired laser operation just near the lasing threshold. The use of a double MZI instead of a single MZI could improve the laser stability and extends the range of the laser tunability. The model predicts a gap between two repetitive rate ranges where pulse train generation is not supported.
我们采用了一种简单的方法来分析包含可调马赫-曾德尔干涉仪(MZI)的谐波锁模光纤激光器的行为。我们的模型能够描述激光输出的关键特性,并探究在整个GHz范围内调谐的不同脉冲重复率下负责激光运行的物理机制的局限性。在低重复率下,激光器作为由快速饱和吸收体触发的谐波锁模孤子激光器运行。在高重复率下,由于MZI引发的耗散四波混频和增益谱滤波,激光器发生锁模。然而,由于MZI提供的模式选择性较差,该状态下激光器的稳定性相当低,MZI仅能在接近激光阈值时支持所需的激光运行。使用双MZI而非单MZI可以提高激光器的稳定性,并扩展激光可调谐范围。该模型预测了两个重复率范围之间的间隙,在该间隙内不支持脉冲序列的产生。