Li Dong, Zhai Ruizhan, Wu Yongjing, Liu Minzhe, Zhao Kun, Yang Qi, Dong Youwei, Li Xiaoying, Wu Xiaoyang, Jia Zhongqing
Shandong Key Laboratory of Optoelectronic Sensing Technologies/National-Local Joint Engineering Laboratory for Energy and Environment Fiber Smart Sensing Technologies, Laser Institute, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250104, China.
Materials (Basel). 2025 Feb 16;18(4):864. doi: 10.3390/ma18040864.
Femtosecond fiber lasers are widely utilized across various fields and also serve as an ideal platform for studying soliton dynamics. Bound-state solitons, as a significant soliton dynamic phenomenon, attract widespread attention and research interest because of their potential applications in high-speed optical communication, all-optical information storage, quantum computing, optical switching, and high-resolution spectroscopy. We investigate the effects of pump power variations on the formation of mode-locked solitons and bound-state solitons in a femtosecond fiber laser with a CrS saturable absorber (SA) through numerical simulations while observing the transition, formation, and break-up process of bound soliton pulses. By optimizing the cavity structure and adjusting the net dispersion, the mode-locked soliton is obtained based on this SA. This is the narrowest solitons produced by this SA to date, exhibiting the smallest time-bandwidth product. Moreover, stable double-bound solitons and unique (2 + 1) triple-bound solitons are successfully obtained. The diverse bound-state solitons not only demonstrate the excellent nonlinear absorption properties of CrS as a saturable absorber but also expand the scope of applications for CrS saturable absorbers in fiber lasers.
飞秒光纤激光器在各个领域都有广泛应用,也是研究孤子动力学的理想平台。束缚态孤子作为一种重要的孤子动力学现象,因其在高速光通信、全光信息存储、量子计算、光开关和高分辨率光谱学等方面的潜在应用而受到广泛关注和研究兴趣。我们通过数值模拟研究了泵浦功率变化对具有CrS饱和吸收体(SA)的飞秒光纤激光器中锁模孤子和束缚态孤子形成的影响,同时观察束缚孤子脉冲的跃迁、形成和破裂过程。通过优化腔结构和调整净色散,基于这种饱和吸收体获得了锁模孤子。这是该饱和吸收体迄今为止产生的最窄孤子,具有最小的时间带宽积。此外,成功获得了稳定的双束缚孤子和独特的(2 + 1)三束缚孤子。这些多样的束缚态孤子不仅展示了CrS作为饱和吸收体的优异非线性吸收特性,还扩展了CrS饱和吸收体在光纤激光器中的应用范围。