Liu Bowen, Luo Yiyang, Xiang Yang, Xiao Xiangpeng, Sun Qizhen, Liu Deming, Shum Perry Ping
Opt Express. 2018 Oct 15;26(21):27461-27471. doi: 10.1364/OE.26.027461.
Ultrafast fiber lasers have been serving as an ideal playground for spreading the extensive industrial applications and exploring the optics nonlinear dynamics. Here, we report a bidirectional fiber laser scheme for validating the possibility of a multiplexed laser system, which is passively mode-locked by the nonlinear polarization rotation (NPR) technique. In particular, the proposed fiber laser consists of one main cavity and two counter-propagating branches with different dispersion distributions. Thus, different formation mechanisms are introduced into the lasing oscillator. Consequently, stable conventional solitons (CSs) and dissipative solitons (DSs) are respectively formed in the clockwise (CW) and counterclockwise (CCW) directions of the same lasing oscillator. Moreover, attributing to the strong birefringence filtering effect, the wavelength selection mechanism is induced. Through the proper management of intra-cavity birefringence, wideband wavelength tuning and switchable multi-wavelength operations are experimentally observed. The central wavelength of CS can be continuously tuned from 1560 nm to 1602 nm. Additionally, the evolution process of different multi-wavelength operations is also elucidated. Benefiting from this multiplexed laser scheme, bidirectional lasing oscillation, multi-state soliton emission, wavelength tuning and multi-wavelength operations are synchronously realized in a single laser cavity. To the best of our knowledge, it is the first time for such a multiplexed fiber laser has been reported. The results provide information for multifunctional ultrafast fiber laser system, which is potentially set for telecommunications, fiber sensing and optics signal processing, etc.
超快光纤激光器一直是拓展广泛工业应用和探索光学非线性动力学的理想平台。在此,我们报道一种双向光纤激光器方案,用于验证复用激光系统的可能性,该系统通过非线性偏振旋转(NPR)技术实现被动锁模。特别地,所提出的光纤激光器由一个主腔和两个具有不同色散分布的反向传播分支组成。因此,不同的形成机制被引入到激光振荡器中。结果,在同一激光振荡器的顺时针(CW)和逆时针(CCW)方向上分别形成了稳定的传统孤子(CSs)和耗散孤子(DSs)。此外,由于强双折射滤波效应,诱导了波长选择机制。通过对腔内双折射的适当控制,实验观察到了宽带波长调谐和可切换的多波长操作。CS的中心波长可以从1560nm连续调谐到1602nm。此外,还阐明了不同多波长操作的演化过程。受益于这种复用激光方案,在单个激光腔内同步实现了双向激光振荡、多态孤子发射、波长调谐和多波长操作。据我们所知,这是首次报道这种复用光纤激光器。这些结果为多功能超快光纤激光系统提供了信息,该系统有望应用于电信、光纤传感和光学信号处理等领域。