Peng Junsong, Boscolo Sonia
Aston Institute of Photonic Technologies, School of Engineering and Applied Science, Aston University, Birmingham B4 7ET, United Kingdom.
Sci Rep. 2016 May 17;6:25995. doi: 10.1038/srep25995.
We present the operation of an ultrafast passively mode-locked fibre laser, in which flexible control of the pulse formation mechanism is readily realised by an in-cavity programmable filter the dispersion and bandwidth of which can be software configured. We show that conventional soliton, dispersion-managed (DM) soliton (stretched-pulse) and dissipative soliton mode-locking regimes can be reliably targeted by changing the filter's dispersion and bandwidth only, while no changes are made to the physical layout of the laser cavity. Numerical simulations are presented which confirm the different nonlinear pulse evolutions inside the laser cavity. The proposed technique holds great potential for achieving a high degree of control over the dynamics and output of ultrafast fibre lasers, in contrast to the traditional method to control the pulse formation mechanism in a DM fibre laser, which involves manual optimisation of the relative length of fibres with opposite-sign dispersion in the cavity. Our versatile ultrafast fibre laser will be attractive for applications requiring different pulse profiles such as in optical signal processing and optical communications.
我们展示了一种超快被动锁模光纤激光器的运行情况,其中通过腔内可编程滤波器可轻松实现对脉冲形成机制的灵活控制,该滤波器的色散和带宽可通过软件配置。我们表明,仅通过改变滤波器的色散和带宽,就能可靠地实现传统孤子、色散管理(DM)孤子(拉伸脉冲)和耗散孤子锁模状态,而无需对激光腔的物理布局进行任何更改。给出了数值模拟结果,证实了激光腔内不同的非线性脉冲演化。与传统的控制DM光纤激光器中脉冲形成机制的方法相比,所提出的技术在实现对超快光纤激光器的动力学和输出的高度控制方面具有巨大潜力,传统方法涉及手动优化腔内具有相反符号色散的光纤的相对长度。我们这种多功能超快光纤激光器对于诸如光信号处理和光通信等需要不同脉冲轮廓的应用将具有吸引力。