超短脉冲
物理
傅里叶变换
波形
激光器
带宽(计算)
模式锁定
光学
非线性系统
孤子
计算物理学
量子力学
电信
计算机科学
电压
作者
Yunzheng Wang,Cong Wang,Feng Zhang,Jia Guo,Chunyang Ma,Weichun Huang,Yufeng Song,Yanqi Ge,Jie Liu,Han Zhang
标识
DOI:10.1088/1361-6633/abbcd7
摘要
Mode-locking lasers have not only produced huge economic benefits in industrial fields and scientific research, but also provided an excellent platform to study diverse soliton phenomena. However, the real-time characterization of the ultrafast soliton dynamics remains challenging for traditional electronic instruments due to their relatively low response bandwidth and slow scan rate. Consequently, it is urgent for researchers to directly observe these ultrafast evolution processes, rather than just indirectly understand them from numerical simulations or averaged measurement data. Fortunately, dispersive Fourier transformation (DFT) provides a powerful real-time measurement technique to overcome the speed limitations of traditional electronic measurement devices by mapping the frequency spectrum onto the temporal waveform. In this review, the operation principle of DFT is discussed and the recent progress in characterizing the ultrafast transient soliton dynamics of mode-locking lasers is summarized, including soliton explosions, soliton molecules, noise-like pulses, rogue waves, and mode-locking buildup processes.
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