超短脉冲
多模光纤
光学
模式锁定
光纤激光器
材料科学
脉搏(音乐)
激光器
光电子学
光谱宽度
飞秒脉冲整形
模耦合
连续波
光子学
饱和吸收
单模光纤
波长
联轴节(管道)
色散(光学)
非线性光学
脉冲整形
带宽限制脉冲
光纤
四波混频
物理
超连续谱
相位共轭
超快激光光谱学
干扰(通信)
自由光谱范围
能量(信号处理)
耗散孤子
调幅
纤维
模态色散
光子晶体光纤
自相位调制
作者
Bole Song,Shan Wang,Zhiguo Lv
标识
DOI:10.1109/lpt.2025.3615252
摘要
We demonstrate the first stable coexistence of multimode ultrafast pulses and continuous waves (MM-CWs) accompanied by CW-induced resonant spectral sidebands in a spatiotemporal mode-locked (STML) fiber laser. This breakthrough is achieved through a strategically designed saturable absorber based on nonlinear multimode interference (NL-MMI), fabricated by splicing graded-index multimode fibers with 50/125 μm and 62.5/125 μm core diameters into an SMF-MMF-SMF structure. The STML laser achieves record L-band wavelength tuning spanning 19 nm (1568–1587 nm), the broadest range reported in 1.5μm STML systems, with pulse width shortening from 1.59 ps to 1 ps spectral during redshift. Furthermore, we discover phase-matched resonant sidebands generated through coupling between multimode continuous waves (MM-CWs) and dispersive waves (DWs), which dissipate excess energy to stabilize mode competition. Crucially, these resonant sidebands establish a topological energy transfer channel that enforces phase synchronization between STML pulses and MM-CWs, enabling their long-term coexistence. Beam profile evolution further confirms spatiotemporal redistribution during operation. Our work enriches dispersive wave dynamics in multimode environments and opens avenues for multichannel ultrafast photonic systems.
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