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Filter-driven four wave mixing dual-mode mode-locked laser based on an integrated nonlinear microring resonator

机译:基于集成非线性微环谐振器的滤波器驱动的四波混合双模锁模激光器

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A potential solution for the demand for highly stable pulsed lasers at hundreds of GHz repetition rates is represented by passively mode locked fiber lasers. These lasers are composed of a band-limited amplifier, a dispersive element and a nonlinear element. When a high finesse resonant filter is added intracavity, they emit pulses with a repetition rate equal to the filter free spectral range (FSR) — a configuration known as dissipative four wave mixing (DFWM) [1,2]. The main cavity (MC) modes selected by the filter exchange energy by four wave mixing (FWM) and lock their mutual phase as a traveling pulse emerges. However, this approach leads to several unsolved instability problems [3], and so it has basically no impact in practical applications. By moving the nonlinear element inside the filter [4], we demonstrated stable pulsed emission at 200 GHz of repetition rate using a novel design we term Filter-Driven Four Wave Mixing (FD-FWM), that takes advantage of the high nonlinearity of an integrated micro-ring resonator [4] in a doped silica platform [5]. The stability arises as only one main cavity mode oscillates in each nonlinear resonator resonance. Here we present the first example of a stable operating regime for the FD-FWM scheme where two MC modes per resonator linewidth are allowed to oscillate [6]. This novel stable operating regime leads to the formation of two spectral 200GHz-comb replicas separated by the FSR of the external main cavity (FSRC = 65MHz). The beating of the two combs generates a sinusoidal modulation of the 200GHz output pulse train at the radio-frequency (Fig 1a) of the main cavity FSR, a quantity that is readily detectable with photodiodes.
机译:被动模式锁定光纤激光器代表了对数百GHz重复频率下高度稳定的脉冲激光器的潜在解决方案。这些激光器由带限放大器,色散元件和非线性元件组成。当在腔内添加高精细谐振滤波器时,它们会以等于滤波器自由频谱范围(FSR)的重复频率发射脉冲-这种配置称为耗散四波混频(DFWM)[1,2]。滤波器选择的主腔(MC)模式通过四波混频(FWM)交换能量,并在出现行进脉冲时锁定它们的相互相位。但是,这种方法会导致一些未解决的不稳定问题[3],因此在实际应用中基本上没有影响。通过在滤波器内部移动非线性元件[4],我们使用一种称为滤波器驱动的四波混频(FD-FWM)的新颖设计,展示了在重复频率为200 GHz时稳定的脉冲发射,该设计利用了高非线性的优势。在掺杂二氧化硅平台[5]中集成了微环谐振器[4]。在每个非线性谐振器谐振中只有一个主腔模振荡会产生稳定性。在这里,我们给出了FD-FWM方案的稳定工作方案的第一个例子,其中每个谐振器线宽的两个MC模式都允许振荡[6]。这种新颖的稳定工作机制导致形成两个频谱200GHz梳状副本,这些副本被外部主腔的FSR(FSRC = 65MHz)隔开。两只梳子的跳动在主腔FSR的射频(图1a)上产生了200GHz输出脉冲序列的正弦调制,该数量很容易用光电二极管检测到。

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