Shi Haosen, Song Youjian, Wang Chingyue, Zhao Luming, Hu Minglie
Opt Lett. 2018 Apr 1;43(7):1623-1626. doi: 10.1364/OL.43.001623.
In this work, we study the timing instability of a scalar twin-pulse soliton molecule generated by a passively mode-locked Er-fiber laser. Subfemtosecond precision relative timing jitter characterization between the two solitons composing the molecule is enabled by the balanced optical cross-correlation (BOC) method. Jitter spectral density reveals a short-term (on the microsecond to millisecond timescale) random fluctuation of the pulse separation even in the robust stationary soliton molecules. The root-mean-square (rms) timing jitter is on the order of femtoseconds depending on the pulse separation and the mode-locking regime. The lowest rms timing jitter is 0.83 fs, which is observed in the dispersion managed mode-locking regime. Moreover, the BOC method has proved to be capable of resolving the soliton interaction dynamics in various vibrating soliton molecules.
在这项工作中,我们研究了由被动锁模铒光纤激光器产生的标量双脉冲孤子分子的时间不稳定性。通过平衡光学互相关(BOC)方法能够实现对构成分子的两个孤子之间亚飞秒精度的相对时间抖动特性进行表征。抖动谱密度揭示了即使在稳健的稳态孤子分子中,脉冲间隔也存在短期(在微秒到毫秒时间尺度上)的随机波动。均方根(rms)时间抖动取决于脉冲间隔和锁模机制,其量级为飞秒。最低的均方根时间抖动为0.83飞秒,这是在色散管理锁模机制中观察到的。此外,BOC方法已被证明能够解析各种振动孤子分子中的孤子相互作用动力学。