Chen Xiting, Wen Bailing, Zhang Hong, Long Xingyuan, Zhang Enqi, Guo Chunyu, Yan Peiguang, Wang Jinzhang
Opt Express. 2024 Sep 9;32(19):32643-32654. doi: 10.1364/OE.533197.
We demonstrate a 2.08 µm all-polarization-maintaining (PM) holmium-doped fiber oscillator using a hybrid mode-locking technique with nonlinear polarization evolution (NPE) and a semiconductor saturable absorber mirror (SESAM). This oscillator features a linear structure with dual output ports. It initiates stable single-pulse mode-locking at a fundamental repetition rate of 57.86 MHz, requiring only about 400 mW of pump power. However, removing SESAM requires increasing the pump power to about 2.2 W-about a 5.8-fold increase-to initiate mode-locking, which starts in a multi-pulse state. Additionally, the oscillator can operate in two distinct states by adjusting the phase bias, ensuring that the main output port delivers high-quality, soliton-like femtosecond pulses. The other port, known as the rejection port, emits lower-quality pulses with different spectral and temporal characteristics. However, in one state, the pulse quality at the rejection port is significantly enhanced, approaching the high quality of the main output port. Theoretical analysis indicates that the pulse quality at the rejection port strongly relies on the energy distribution between the two orthogonally polarized pulses in the PM fiber. Another advantage of the hybrid mode-locking configuration is that it allows a pump power tuning range to maintain single-pulse operation as high as 220 mW. It is ∼4 times higher than that of the NPE-only configuration which is about 60 mW. These results indicate that oscillators using hybrid mode-locking exhibit much greater flexibility and reliability than those using PM-NPE alone. The hybrid mode-locking technique shows potential in addressing the self-starting challenges inherent in PM-NPE lasers, thereby advancing their applicability in practical scenarios.
我们展示了一种采用非线性偏振演化(NPE)和半导体可饱和吸收镜(SESAM)的混合锁模技术的2.08μm全保偏(PM)掺钬光纤振荡器。该振荡器具有线性结构和双输出端口。它在57.86MHz的基频重复率下启动稳定的单脉冲锁模,仅需约400mW的泵浦功率。然而,去除SESAM后,需要将泵浦功率增加到约2.2W(增加约5.8倍)才能启动锁模,且启动时处于多脉冲状态。此外,通过调整相位偏置,该振荡器可以在两种不同状态下工作,确保主输出端口输出高质量的类孤子飞秒脉冲。另一个端口,即抑制端口,发射具有不同光谱和时间特性的低质量脉冲。然而,在一种状态下,抑制端口的脉冲质量显著提高,接近主输出端口的高质量。理论分析表明,抑制端口的脉冲质量强烈依赖于保偏光纤中两个正交偏振脉冲之间的能量分布。混合锁模配置的另一个优点是,它允许泵浦功率调谐范围高达220mW来维持单脉冲运行。这比仅采用NPE配置(约60mW)高出约4倍。这些结果表明,采用混合锁模的振荡器比仅采用保偏-NPE的振荡器具有更大的灵活性和可靠性。混合锁模技术在解决保偏-NPE激光器固有的自启动挑战方面显示出潜力,从而推动其在实际应用中的适用性。