Debnath Pulak Chandra, Yeom Dong-Il
Department of Energy Systems Research, Ajou University, 206 Worldcup-ro, Yeongtong-gu, Suwon 16499, Korea.
Department of Physics, Ajou University, 206 Worldcup-ro, Yeongtong-gu, Suwon 16499, Korea.
Sensors (Basel). 2021 May 25;21(11):3676. doi: 10.3390/s21113676.
Wide-spectral saturable absorption (SA) in low-dimensional (LD) nanomaterials such as zero-, one-, and two-dimensional materials has been proven experimentally with outstanding results, including low saturation intensity, deep modulation depth, and fast carrier recovery time. LD nanomaterials can therefore be used as SAs for mode-locking or Q-switching to generate ultrafast fiber laser pulses with a high repetition rate and short duration in the visible, near-infrared, and mid-infrared wavelength regions. Here, we review the recent development of emerging LD nanomaterials as SAs for ultrafast mode-locked fiber laser applications in different dispersion regimes such as anomalous and normal dispersion regimes of the laser cavity operating in the near-infrared region, especially at ~1550 nm. The preparation methods, nonlinear optical properties of LD SAs, and various integration schemes for incorporating LD SAs into fiber laser systems are introduced. In addition to these, externally (electrically or optically) controlled pulsed fiber laser behavior and other characteristics of various LD SAs are summarized. Finally, the perspectives and challenges facing LD SA-based mode-locked ultrafast fiber lasers are highlighted.
零维、一维和二维等低维(LD)纳米材料中的宽光谱饱和吸收(SA)已通过实验得到验证,结果优异,包括低饱和强度、深调制深度和快速载流子恢复时间。因此,LD纳米材料可用作锁模或调Q的饱和吸收体,以在可见光、近红外和中红外波长区域产生具有高重复率和短持续时间的超快光纤激光脉冲。在此,我们综述了新兴LD纳米材料作为超快锁模光纤激光应用的饱和吸收体在不同色散区域(如近红外区域运行的激光腔的反常和正常色散区域,特别是在~1550nm)的最新进展。介绍了LD饱和吸收体的制备方法、非线性光学性质以及将LD饱和吸收体纳入光纤激光系统的各种集成方案。除此之外,还总结了外部(电或光)控制的脉冲光纤激光行为以及各种LD饱和吸收体的其他特性。最后,强调了基于LD饱和吸收体的锁模超快光纤激光器面临的前景和挑战。